Oxone-aceton mediated metal free preparation of syn-diols

10774060 ยท 2020-09-15

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Abstract

The present invention disclose a simple and high yielding process of Oxone-acetone mediated metal free syn-dihydroxylation of benzo fused olefins of formula (II) to obtain library of dioxolo compounds of formula (I). The invention further disclose a simple and high yielding process of Oxone-acetone mediated metal free syn-dihydroxylation of stilbene and its derivatives of formula (III) thereof. Also disclosed herein is Wacker-type oxidation of benzo-fused olefins of formula (X). The invention further disclose compounds of formula (I) which can be useful for the treatment of HIV, cancer or malaria. ##STR00001##

Claims

1. A simple, one step, stereospecific, oxone-acetone mediated, metal free process for preparation of a compound of Formula (I), ##STR00128## wherein, R2 and R3 together represent dioxolo ##STR00129## and R1, or R4, or R5 that do not form the dioxolo group are independently selected from the group consisting of hydrogen, alkoxy, unsubstituted or substituted phenyl, halogen, hydroxy, nitro, amino, carbonyl, COOH, cyano, azo, unsubstituted or substituted benzyl group, C1 to C6 cyclo rings optionally having one or more heteroatoms selected from N, O or S, heteroaryl, unsubstituted linear or branched alkyl radical having 2 to 10 C atoms, substituted linear or branched alkyl radical having 2 to 10 C atoms, in which one or more CH2 groups optionally each independently of one another be replaced by C=O, N, O, S, CHCH, or CC, unsubstituted linear or branched alkenyl radical having 2 to 10 C atoms, substituted linear or branched alkenyl radical having 2 to 10 C atoms, unsubstituted linear or branched alkynyl radical having 2 to 10 C atoms, and substituted linear or branched alkynyl radical having 2 to 10 C atoms; Y is CHR6, or heteroatom; wherein R6 is selected from hydrogen, methyl, and phenyl; R is hydrogen or alkoxy; and n is 0 or 1; with the proviso when n=0, Formula I forms five membered ring or three carbon chain, or when n=1, Formula I forms six membered ring; said process comprising: (i) mixing compound of Formula (II): ##STR00130## wherein, R1, or R3, or R5 are independently selected from the group consisting of hydrogen, alkoxy, unsubstituted or substituted phenyl, halogen, hydroxy, nitro, amino, carbonyl, COOH, cyano, azo, unsubstituted or substituted benzyl group, C1 to C6 cyclo rings which optionally having one or more heteroatoms selected from N, O or S, heteroaryl, unsubstituted linear or branched alkyl radical having 2 to 10 C atoms, substituted linear or branched alkyl radical having 2 to 10 C atoms, in which one or more CH2 groups optionally each independently of one another be replaced by C=O, N, O, S, CHCH, or CC, unsubstituted linear or branched alkenyl radical having 2 to 10 C atoms, substituted linear or branched alkenyl radical having 2 to 10 C atoms; unsubstituted linear or branched alkynyl radical having 2 to 10 C atoms and substituted linear or branched alkynyl radical having 2 to 10 C atoms; R2 is hydrogen; R4 is none; Y is CHR6, or heteroatom; wherein R6 is selected from hydrogen, methyl, and phenyl; R is hydrogen or alkoxy; n is 0 or 1; with the proviso when n=0, Formula II forms five membered ring or three carbon chain, or when n=1, Formula II forms six membered ring; and . . . between CR1 R2 and CR3 represents a single bond, and . . . between CR3 and CR4R5 represents a double bond; with powdered Oxone (H.sub.3K.sub.5S.sub.4O.sub.18) and sodium bicarbonate (NaHCO.sub.3) in a ratio in a range of 2:3 in a mixture of acetone, ethyl acetate, and water to obtain a reaction mixture; (ii) stirring the reaction mixture obtained in step (i) at room temperature in a range of 25 to 30 C. for a period in a range of 2-5 hours; and (iii) evaporating excess acetone under reduced pressure after completion of reaction, portioning the remaining reaction mixture between water and ethyl acetate and followed by purification to obtain compound of Formula I.

2. The process as claimed in claim 1, wherein the mixture of acetone, ethyl acetate, and water is in a ratio of 5:1:1.

3. The process as claimed in claim 1, wherein the compound of Formula I has the structure of Formula (VI): ##STR00131## wherein R is selected from hydrogen, alkoxy, phenyl which is unsubstituted or substituted, halogen, hydroxy, nitro, amino, carbonyl, COOH, cyano, azo, benzyl group which is unsubstituted or substituted; C1 to C6 cyclo rings which may have one or more heteroatoms selected from N, O or S; a heteroaryl; a linear or branched alkyl radical having 2 to 10 C atoms which is unsubstituted or substituted; in which one or more CH2 groups may each, independently of one another, be replaced by CO, N, O,S, or CHCH; a linear or branched alkenyl radical having 2 to 10 C atoms which is unsubstituted or substituted; and a linear or branched alkynyl radical having 2 to 10 C atoms which is unsubstituted or substituted.

4. The process as claimed in claim 1, wherein the compound of Formula I is selected from the group consisting of: (i) 2,2-dimethyl-8,8a-dihydro-3aH-indeno[1,2-d][1,3]dioxole (2a); (ii) 2,2-dimethyl-3a-propyl-8,8a-dihydro-3aH-indeno[1,2-d][1,3]dioxole (2b); (iii) 3a-(3-chloropropyl)-2,2-dimethyl-8,8a-dihydro-3aH-indeno[1,2-d][1,3]dioxole (2c); (iv) 8-(4-bromobutyl)-2,2-dimethyl-8,8a-dihydro-3aH-indeno[1,2-d][1,3]dioxole (2d); (v) 8-benzyl-2,2-dimethyl-8,8a-dihydro-3aH-indeno[1,2-d][1,3]dioxole (2e); (vi) 3a-benzyl-2,2-dimethyl-8,8a-dihydro-3aH-indeno[1,2-d][1,3]dioxole (2f); (vii) 3a-isopropyl-2,2-dimethyl-8,8a-dihydro-3aH-indeno[1,2-d][1,3]dioxole (2g); (viii) 3a-cyclohexyl-2,2-dimethyl-8,8a-dihydro-3aH-indeno[2,1-d][1,3]dioxole (2h); (ix) 2,2-dimethyl-3a-phenyl-8,8a-dihydro-3aH-indeno[1,2-d][1,3]dioxole (2i); (x) 7-(2,2-dimethyl-8,8a-dihydro-3aH-indeno[2,1-d][1,3]dioxol-3a-yl)heptan-2-one (2j); (xi) 3a-(but-3-enyl)-2,2-dimethyl-8,8a-dihydro-3aH-indeno[2,1-d][1,3]dioxole (2m); and (xii) 2,2-dimethyl-3a-(2-(oxiran-2-yl)ethyl)-3a,8a-dihydro-8H-indeno[1,2-d][1,3]dioxole (6).

5. A simple, one step, stereospecific, oxone-acetone mediated, metal free process for preparation of a compound of Formula (I), ##STR00132## wherein, R2 is hydrogen and R1, R3 and R4 that do not form the dioxolo group are independently selected from the group consisting of hydrogen, alkoxy, unsubstituted or substituted phenyl, halogen, hydroxy, nitro, amino, carbonyl, COOH, cyano, azo, unsubstituted or substituted benzyl group, C1 to C6 cyclo rings optionally having one or more heteroatoms selected from N, O or S, heteroaryl, unsubstituted linear or branched alkyl radical having 2 to 10 C atoms, substituted linear or branched alkyl radical having 2 to 10 C atoms, in which one or more CH2 groups optionally each independently of one another be replaced by CO, N, O, S, CHCH, or CC, unsubstituted linear or branched alkenyl radical having 2 to 10 C atoms, substituted linear or branched alkenyl radical having 2 to 10 C atoms, unsubstituted linear or branched alkynyl radical having 2 to 10 C atoms, and substituted linear or branched alkynyl radical having 2 to 10 C atoms; Y is CHR6; wherein R6 is selected from hydrogen, methyl, and phenyl, and wherein R5 together with CH of CHR6 represent dioxolo ##STR00133## R is hydrogen or alkoxy; and n is 1, Formula I forms six membered ring; said process comprising: (i) mixing compound of Formula (II).sub.c: ##STR00134## wherein, R1, or R3, or R5 are independently selected from the group consisting of hydrogen, alkoxy, unsubstituted or substituted phenyl, halogen, hydroxy, nitro, amino, carbonyl, COOH, cyano, azo, unsubstituted or substituted benzyl group, C1 to C6 cyclo rings which optionally having one or more heteroatoms selected from N, O or S, heteroaryl, unsubstituted linear or branched alkyl radical having 2 to 10 C atoms, substituted linear or branched alkyl radical having 2 to 10 C atoms, in which one or more CH2 groups optionally each independently of one another be replaced by CO, N, O, S, CHCH, or CC, unsubstituted linear or branched alkenyl radical having 2 to 10 C atoms, substituted linear or branched alkenyl radical having 2 to 10 C atoms; unsubstituted linear or branched alkynyl radical having 2 to 10 C atoms and substituted linear or branched alkynyl radical having 2 to 10 C atoms; R2 is hydrogen; R4 is none; Y is CR6, wherein R6 is selected from hydrogen, methyl, and phenyl; R is hydrogen or alkoxy; and n is 1, Formula (II).sub.c forms six membered ring with powdered Oxone (H.sub.3K.sub.5S.sub.4O.sub.18) and sodium bicarbonate (NaHCO.sub.3) in a ratio in a range of 2:3 in a mixture of acetone, ethyl acetate, and water to obtain a reaction mixture; (ii) stirring the reaction mixture obtained in step (i) at room temperature in a range of 25 to 30 C. for a period in a range of 2-5 hours; and (iii) evaporating excess acetone under reduced pressure after completion of reaction, portioning the remaining reaction mixture between water and ethyl acetate and followed by purification to obtain compound of Formula I.

6. The process of claim 5, wherein the mixture of acetone, ethyl acetate, and water is in a ratio of 5:1:1.

7. The process of claim 5, wherein the compound of Formula I is selected from the group consisting of: (i) 2,2,9b-Trimethyl-3a,4,5,9b-tetrahydronaphtho[2,1-d][1,3]dioxole (2o); (ii) 7-Methoxy-2,2,9b-trimethyl-3a,4,5,9b-tetrahydronaphtho[1,2-d][1,3]dioxole (2p); (iii) 2,2-Dimethyl-9b-phenyl-3a,4,5,9btetrahydronaphtho[2,1-d][1,3]dioxole (2q); and (iv) 7-Methoxy-2,2-dimethyl-9b-phenyl-3a,4,5,9b-tetrahydronaphtho[1,2-d][1,3] dioxole (2r).

8. A simple, one step, stereospecific, oxone-acetone mediated, metal free process for preparation of a compound of Formula (IV), ##STR00135## wherein R is selected from aryl and benzyl, said process comprising: (i) mixing a compound of Formula (III): ##STR00136## with powdered Oxone (H.sub.3K.sub.5S.sub.4O.sub.18) and sodium bicarbonate (NaHCO.sub.3) in a ratio in a range of 2:3 in a mixture of acetone, ethyl acetate, and water to obtain a reaction mixture; (ii) stirring the reaction mixture obtained in step (i) at room temperature in a range of 25 to 30 C. for a period in a range of 2-5 hours; and (iii) evaporating excess acetone under reduced pressure after completion of reaction, portioning the remaining reaction mixture between water and ethyl acetate, and followed by purification to obtain the compound of Formula (IV).

9. The process of claim 8, wherein the mixture of acetone, ethyl acetate, and water is in a ratio of 5:1:1.

10. The process of claim 8, wherein the compound of Formula IV is selected from the group consisting of: (i) (4S,5S)-2,2-Dimethyl-4,5-diphenyl-1,3-dioxolane (9a); and (ii) (4S,5R)-2,2-Dimethyl-4,5-diphenyl-1,3 dioxolane (9b).

Description

DETAILED DESCRIPTION OF THE INVENTION

(1) In view of above, the present invention discloses Oxone-acetone mediated metal free syn-dihydroxylation of benzo-fused cyclic olefins of formula (II)/alkenes of formula (IV).

(2) In an aspect, the present invention provides a process which is stereospecific and does not proceed via the epoxide route.

(3) The present inventors after exhaustive experimentation identified the optimized conditions that can drive the Oxone-acetone mediated reaction of benzo fused cycloalkenes/stilbene and its derivatives exclusively towards the syn-dihydroxylation without proceeding the epoxide route. Unlike the use of acetone as a reagent for epoxidation in prior art process the optimized conditions employed in syn dihydroxylation uses acetone as the solvent. Further, both the base and Oxone are employed in the same molar proportions, like in the case of epoxidation, the controlled experiments revealed that the presence of ethyl acetate is also essential.

(4) The present invention disclose the optimized reaction conditions involving the addition of 2 equivalents of powdered Oxone (H3K5S4O18) to stirred slurry of 3 equivalents of sodium bicarbonate (NaHCO3) and 1 equivalent of benzo fused cycloalkenes of formula II/or alkenes of formula III in a mixture of solvents 5:1:1 (acetone+ethyl acetate+water) at ambient temperature and pressure to obtain library of dioxolo compounds/acetonides of formula (I) or formula (IV) respectively.

(5) The present invention relates to simple, one step, oxone-acetone mediated metal free syn-dihydroxylation process at ambient temperature and pressure for synthesis of dioxolo compounds of benzo-fused cyclic olefins of formula (I);

(6) ##STR00009##
wherein;
R1 and R2 or R2 and R3 or R5 together with CHR6 represent dioxolo

(7) ##STR00010##
R is selected from hydrogen or alkoxy;
R1 or R2 or R3 or R4 or R5 which do not form the dioxolo group is selected independently of each other from hydrogen, alkoxy, phenyl which is (un)substituted or substituted, halogen, hydroxy, nitro, amino, carbonyl, COOH, cyano, azo, benzyl group which is (un)substituted or substituted; C1 to C6 cyclo compounds which may have one or more heteroatoms selected from N, O or S; a heteroaryl, a linear or branched alkyl radical having 1 to 10 C atoms which is (un)substituted or substituted; in which one or more CH2 groups may each, independently of one another, be replaced by CO, N, O or S, CHCH, CC; a linear or branched alkenyl radical having 1 to 10C atoms which is (un)substituted or substituted; a linear or branched alkynyl radical having 1 to 10C atoms which is (un)substituted or substituted;
Y is CHR6 or heteroatom; wherein R6 is hydrogen or methyl or phenyl;
n is 0 or 1;
with the proviso when
n is 0
R2 and R3 together represent dioxolo

(8) ##STR00011##
R is selected from hydrogen or alkoxy;
R1, R4 and R5 are selected independently of each other from hydrogen, alkoxy, phenyl which is (un)substituted or substituted, halogen, hydroxy, carbonyl, -azo, benzyl group which is (un)substituted or substituted; C1 to C6 cyclo compounds a linear or branched alkyl radical having 1 to 8C atoms which is (un)substituted or substituted; in which one or more CH2 groups may each, independently of one another, CHCH, CC; a linear or branched alkenyl radical having 1 to 8C atoms which is (un)substituted or substituted; a linear or branched alkynyl radical having 1 to 10C atoms which is (un)substituted or substituted;
with the proviso when,
n is 0
R3 represent dioxolo

(9) ##STR00012##
R is selected from hydrogen or alkoxy;
R1, R2, R4 and R5 are selected independently of each other from hydrogen, alkoxy, phenyl which is (un)substituted or substituted, halogen, azo, benzyl group which is (un)substituted or substituted; C1 to C6 cyclo compounds a linear or branched alkyl radical having 1 to 8C atoms which is (un)substituted or substituted; in which one or more CH2 groups may each, independently of one another, CHCH, CC; a linear or branched alkenyl radical having 1 to 10C atoms which is (un)substituted or substituted; a linear or branched alkynyl radical having 1 to 8C atoms which is (un)substituted or substituted;
with the proviso when,
n is 1
Y is carbon
R1 and R2 together represent dioxolo

(10) ##STR00013##
R is selected from hydrogen or alkoxy;
R3, R4 and R5 are selected independently of each other from hydrogen, alkoxy, phenyl which is (un)substituted or substituted, halogen, carbonyl, -, azo, benzyl group which is (un)substituted or substituted; C1 to C6 cyclo compounds a linear or branched alkyl radical having 1 to 10C atoms which is (un)substituted or substituted; in which one or more CH2 groups may each, independently of one another, be replaced by CHCH, CC; a linear or branched alkenyl radical having 1 to 10C atoms which is (un)substituted or substituted; a linear or branched alkynyl radical having 1 to 10C atoms which is (un)substituted or substituted; with the proviso when
n is 1
Y is CHR6, wherein R6 is hydrogen or methyl or phenyl;
R5 together with CHR6 represent a dioxolo

(11) ##STR00014##
R is selected from hydrogen or alkoxy;
R1, R2, R3 and R4 are selected independently of each other from hydrogen, alkoxy, phenyl which is (un)substituted or substituted, halogen, carbonyl, azo, benzyl group which is (un)substituted or substituted; C1 to C6 cyclo compounds which may have one or more heteroatoms selected from N, O or S; a heteroaryl; a linear or branched alkyl radical having 1 to 8C atoms which is (un)substituted or substituted; in which one or more CH2 groups may each, independently of one another, CHCH, CC; a linear or branched alkenyl radical having 1 to 10C atoms which is (un)substituted or substituted; a linear or branched alkynyl radical having 1 to 8C atoms which is (un)substituted or substituted;
which comprises;
reacting compound of formula (II)

(12) ##STR00015##
wherein,
R is selected from hydrogen or alkoxy,
R1, R2, R3, R4 and R5 are selected independently of each other from hydrogen, alkoxy, phenyl which is (un)substituted or substituted, halogen, carbonyl, -, azo, benzyl group which is (un)substituted or substituted; C1 to C6 cyclo compounds a linear or branched alkyl radical having 1 to 10C atoms which is (un)substituted or substituted; in which one or more CH2 groups may each, independently of one another, be replaced by CHCH, CC; a linear or branched alkenyl radical having 1 to 8C atoms which is (un)substituted or substituted; a linear or branched alkynyl radical having 1 to 8C atoms which is (un)substituted or substituted;
Y is CHR6 or heteroatom; wherein R6 is hydrogen or methyl or phenyl;
n is 0 or 1; the dotted lines represents a double or single bond;
with 2 equivalents of powdered Oxone (H3K5S4O18) and 3 equivalents of sodium bicarbonate (NaHCO3) in a mixture of solvents 5:1:1 (acetone+ethyl acetate+water); stirring the contents at room temperature for 2-5 h; evaporating the excess acetone under reduced pressure on completion of reaction; portioning the remaining reaction mixture between water and ethyl acetate followed by purification.

(13) The present invention provide dioxolo compounds of benzo-fused cyclic olefins of formula (I);

(14) ##STR00016##
wherein;
R1 and R2 or R2 and R3 or R5 together with CHR6 represent dioxolo

(15) ##STR00017##
R is selected from hydrogen or alkoxy;
R1 or R2 or R3 or R4 or R5 which do not form the dioxolo group is selected independently of each other from hydrogen, alkoxy, phenyl which is (un)substituted or substituted, halogen, hydroxy, nitro, amino, carbonyl, COOH, cyano, azo, benzyl group which is (un)substituted or substituted; C1 to C6 cyclo compounds which may have one or more heteroatoms selected from N, O or S; a heteroaryl; a linear or branched alkyl radical having 1 to 10 C atoms which is (un)substituted or substituted; in which one or more CH2 groups may each, independently of one another, be replaced by CO, N, O or S, CHCH, CC; an alkenyl radical having 1 to 10 C atoms which is (un)substituted or substituted; an alkynyl radical having 1 to 10 C atoms which is (un)substituted or substituted;
Y is CHR6 or heteroatom; wherein R6 is hydrogen or methyl or phenyl;
n is 0 or 1;
with the proviso when
n is 0
R2 and R3 together represent dioxolo

(16) ##STR00018##
R is selected from hydrogen or alkoxy;
R1, R4 and R5 are selected independently of each other from hydrogen, alkoxy, phenyl which is (un)substituted or substituted, halogen, hydroxy, nitro, amino, carbonyl, COOH, cyano, azo, benzyl group which is (un)substituted or substituted; C1 to C6 cyclo compounds which may have one or more heteroatoms selected from N, O or S; a heteroaryl; a linear or branched alkyl radical having 1 to 10C atoms which is (un)substituted or substituted; in which one or more CH2 groups may each, independently of one another, be replaced by CO, N, O or S, CHCH, CC; a linear or branched alkenyl radical having 1 to 10C atoms which is (un)substituted or substituted; a linear or branched alkynyl radical having 1 to 10C atoms which is (un)substituted or substituted;
with the proviso when,
n is 0
R3 represent dioxolo

(17) ##STR00019##
R is selected from hydrogen or alkoxy;
R1, R2, R4 and R5 are selected independently of each other from hydrogen, alkoxy, phenyl which is (un)substituted or substituted, halogen, hydroxy, nitro, amino, carbonyl, COOH, cyano, azo, benzyl group which is (un)substituted or substituted; C1 to C6 cyclo compounds which may have one or more heteroatoms selected from N, O or S; a heteroaryl; a linear or branched alkyl radical having 1 to 10C atoms which is (un)substituted or substituted; in which one or more CH2 groups may each, independently of one another, be replaced by C=6, N, O or S, CHCH, CC; a linear or branched alkenyl radical having 1 to 10C atoms which is (un)substituted or substituted; a linear or branched alkynyl radical having 1 to 10C atoms which is (un)substituted or substituted;
with the proviso when,
n is 1
Y is heteroatom
R1 and R2 together represent dioxolo

(18) ##STR00020##
R is selected from hydrogen or alkoxy;
R3, R4 and R5 are selected independently of each other from hydrogen, alkoxy, phenyl which is (un)substituted or substituted, halogen, hydroxy, nitro, amino, carbonyl, COOH, cyano, azo, benzyl group which is (un)substituted or substituted; C1 to C6 cyclo compounds which may have one or more heteroatoms selected from N, O or S; a heteroaryl; a linear or branched alkyl radical having 1 to 10C atoms which is (un)substituted or substituted; in which one or more CH2 groups may each, independently of one another, be replaced by CO, N, O or S, CHCH, CC; a linear or branched alkenyl radical having 1 to 10C atoms which is (un)substituted or substituted; a linear or branched alkynyl radical having 1 to 10C atoms which is (un)substituted or substituted;
with the proviso when
n is 1
Y is CHR6, wherein R6 is hydrogen or methyl or phenyl;
R5 together with CHR6 represent a dioxolo

(19) ##STR00021##
R is selected from hydrogen or alkoxy;
R1, R2, R3 and R4 are selected independently of each other from hydrogen, alkoxy, phenyl which is (un)substituted or substituted, halogen, hydroxy, nitro, amino, carbonyl, COOH, cyano, azo, benzyl group which is (un)substituted or substituted; C1 to C6 cyclo compounds which may have one or more heteroatoms selected from N, O or S; a heteroaryl; a linear or branched alkyl radical having 1 to 10C atoms which is (un)substituted or substituted; in which one or more CH2 groups may each, independently of one another, be replaced by CO, N, O or S, CHCH, CC; a linear or branched alkenyl radical having 1 to 10C atoms which is (un)substituted or substituted; a linear or branched alkynyl radical having 1 to 10C atoms which is (un)substituted or substituted;

(20) The dioxolo compounds of formula (I) of the present invention comprises: 2,2-dimethyl-8,8a-dihydro-3aH-indeno[1,2-d][1,3]dioxole (2a); 2,2-dimethyl-3a-propyl-8,8a-dihydro-3aH-indeno[1,2-d][1,3]dioxole (2b): 3a-(3-chloropropyl)-2,2-dimethyl-8,8a-dihydro-3aH-indeno[1,2-d][1,3]dioxole (2c): 8-(4-bromobutyl)-2,2-dimethyl-8,8a-dihydro-3aH-indeno[1,2-d][1,3]dioxole (2d): 8-benzyl-2,2-dimethyl-8,8a-dihydro-3aH-indeno[1,2-d][1,3]dioxole (2e): 3a-benzyl-2,2-dimethyl-8,8a-dihydro-3aH-indeno[1,2-d][1,3]dioxole (2f): 3a-isopropyl-2,2-dimethyl 8,8a dihydro 3aH-indeno[1,2-d][1,3]dioxole (2g): 3a-cyclohexyl-2,2-dimethyl-8,8a-dihydro-3aH-indeno[2,1-d][1,3]dioxole (2h): 2,2-dimethyl-3a-phenyl-8,8a-dihydro-3aH-indeno[1,2-d][1,3]dioxole (2i): 7-(2,2-dimethyl-8,8a-dihydro-3aH-indeno[2,1-d][1,3]dioxol-3a-yl)heptan-2-one (2j): 2,2-dimethyl-3a,8a-dihydrospiro[cyclopentane-1,8-indeno[2,1-d][1,3]dioxole](2k): 3a-(but-3-enyl)-2,2-dimethyl-8,8a-dihydro-3aH-indeno[2,1-d][1,3]dioxole (2m): 2,2,9b-Trimethyl-3a,4,5,9b-tetrahydronaphtho[2,1-d][1,3]dioxole (2o): 7-Methoxy-2,2,9b-trimethyl-3a,4,5,9b-tetrahydronaphtho[1,2-d][1,3]dioxole (2p): 2,2-Dimethyl-9b-phenyl-3a,4,5,9btetrahydronaphtho[2,1-d][1,3]dioxole (2q): 7-Methoxy-2,2-dimethyl-9b-phenyl-3a,4,5,9b-tetrahydronaphtho[1,2-d][1,3]dioxole (2r): 2,2-dimethyl-3a-(2-(oxiran-2-yl)ethyl)-3a,8a-dihydro-8H-indeno[1,2-d][1,3]dioxole (6): 4S,5 S)-2,2-Dimethyl-4,5-diphenyl-1,3-dioxolane (9a); (4S,5R)-2,2-Dimethyl-4,5-diphenyl-1,3-dioxolane (9b);

(21) In one embodiment, the benzo-fused cyclic olefin is selected from indene or substituted indenes.

(22) The general scheme for synthesis of compounds of Formula (I) from compounds of Formula II is set forth in Scheme 1 below:

(23) ##STR00022##
wherein;
R1 and R2, or R2 and R3, or R5 together with CHR6 represent dioxolo

(24) ##STR00023##
R is hydrogen or alkoxy;
R1, or R2, or R3, or R4, or R5 which do not form the dioxolo group is independently selected from the group consisting of hydrogen, alkoxy (un)substituted or substituted phenyl, halogen, hydroxy, nitro, amino, carbonyl, COOH, cyano, azo, (un)substituted or substituted benzyl group,
C1 to C6 cyclo compounds which may have one or more heteroatoms selected from N, O or S, heteroaryl, (un)substituted linear or branched alkyl radical having 1 to 10 C atoms, substituted linear or branched alkyl radical having 1 to 10 C atoms, in which one or more CH2 groups may each independently of one another be replaced by CO, N, O, S, CHCH, or CC, linear or branched alkenyl radical having 1 to 10 C atoms which is (un)substituted or substituted, linear or branched alkynyl radical having 1 to 10 C atoms which is (un)substituted or substituted;
Y is CHR6, or heteroatom; wherein R6 is selected from hydrogen, methyl, and phenyl;
n is 0 or 1; with the proviso when n=0; Formula I may form five membered ring or three carbon chain; when n=1 Formula I may form six member ring.

(25) Accordingly, the process for synthesis of dioxolo compounds/acetonide from simple indene or its derivatives comprising adding 2 equivalents of powdered Oxone (H3K5S4O18) to a stirred slurry of 3 equivalents of sodium bicarbonate (NaHCO3) and indene or its derivative of formula (V) to a mixture of solvents 5:1:1 (acetone+ethyl acetate+water); stirring the mixture at room temperature for 2-5 h; evaporating the excess acetone under reduced pressure on completion of reaction; portioning the remaining reaction mixture between water and ethyl acetate followed by purification to obtain acetonide/dioxolo compounds of formula (VI).

(26) ##STR00024##
wherein R represent independently of each other groups selected from hydrogen, alkoxy, phenyl which is (un)substituted or substituted, halogen, hydroxy, nitro, amino, carbonyl, COOH, cyano, azo, benzyl group which is (un)substituted or substituted; C1 to C6 cyclo compounds which may have one or more heteroatoms selected from N, O or S; a heteroaryl; a linear or branched alkyl radical having 1 to 10 C atoms which is (un)substituted or substituted; in which one or more CH2 groups may each, independently of one another, be replaced by CO, N, O or S, CHCH, CC; a linear or branched alkenyl radical having 1 to 10 C atoms which is (un)substituted or substituted; a linear or branched alkynyl radical having 1 to 10C atoms which is (un)substituted or substituted.

(27) With simple indene, the reaction was completed within 4 h and the required 2a has been formed as the sole product in 82% yield.

(28) The process is depicted below in Scheme 2:

(29) ##STR00025##

(30) TABLE-US-00001 TABLE 1 Reaction Optimization Oxone NaHCO.sub.3 % of % Yield.sup.b Sr. No. (equiv) (equiv) Conversion (2a) 1 0.5 1 10 2 0.5 2 25 20.sup.c 3 0.5 3 40 .sup.d 4 1 3 40 12.sup.c 5 2 3 100 82 6 2 2 90 71 7 3 3 100 82 8 4 3 100 70.sup.c 9 4 5 100 55.sup.c .sup.[a]Reactions are carried out at room temperature with 0.1 mmol of indene in 2.5 ml acetone 1 ml water + ethyl acetate (1:1). .sup.bIsolated yield. .sup.cMixture of products (2a + 3 + 4). .sup.d4 was obtained in 35% isolated yield.

(31) TABLE-US-00002 TABLE 2 Generality of Oxone-mediated syn-dihydroxylation of various Indene derivatives Product S. No. Substrate (Yield) 1 embedded image 1b embedded image 2b (78%) 2 embedded image 1c embedded image 2c (69%) 3 0embedded image 1d embedded image 2d (77%) 4 embedded image 1e embedded image 2e (77%) 5 embedded image 1f embedded image 2f (75%) 6 embedded image 1g embedded image 2g (63%) 7 embedded image 1h embedded image 2h (65%) 8 0embedded image 1i embedded image 2i (61%) 9 embedded image 1j embedded image 2j (70%) 10 embedded image 1k embedded image 2k (73%) 11 embedded image 1l embedded image 5 (15%) 12 embedded image 1m embedded image 2m (73%) 13 0embedded image 2m embedded image 6 (85%) 14 embedded image 1n embedded image 7 (64%)

(32) The present invention provides a process for the synthesis of substituted indenes, preferably alkyl indene comprising the steps of: a. Adding NaII to a suspension of indene and alkyl bromide in DMF at 0 C. followed by stirring the reaction mixture for 3 h at room temperature; b. Quenching the reaction mixture of step (a) with cold water at 0 C. followed by portioned between water and ethyl acetate and purifying to obtain compounds of formula (VI).

(33) The process for the synthesis of substituted indenes is shown below in Scheme 3:

(34) ##STR00054##
wherein, R is an alkyl and X is halogen:

(35) The present invention discloses syn-dihydroxylation of dihydronaphthalene derivatives of formula (VII).

(36) Accordingly, the process comprises adding 2 equivalents of powdered Oxone (H3K5S4O18) to a stirred slurry of 3 equivalents of sodium bicarbonate (NaHCO3) and dihydronaphthalene derivatives of formula (VII) to a mixture of solvents 5:1:1 (acetone+ethyl acetate+water); stirring the mixture at room temperature for 2-5 h; evaporating the excess acetone under reduced pressure on completion of reaction, portioning the remaining reaction mixture between water and ethyl acetate followed by purification to obtain acetonide/dioxolo compounds of formula (VIII).

(37) ##STR00055##
wherein
R is selected from hydrogen or alkoxy;
R represent independently of each other groups selected from hydrogen, alkoxy, phenyl which is (un)substituted or substituted, halogen, hydroxy, nitro, amino, carbonyl, COOH, cyano, azo, benzyl group which is (un)substituted or substituted; C1 to C6 cyclo compounds which may have one or more heteroatoms selected from N, O or S; a heteroaryl; a linear or branched alkyl radical having 1 to 10C atoms which is (un)substituted or substituted; in which one or more CH2 groups may each, independently of one another, be replaced by CO, N, O or S, CHCH, CC; a linear or branched alkenyl radical having 1 to 10C atoms which is (un)substituted or substituted; a linear or branched alkynyl radical having 1 to 10 C atoms which is (un)substituted or substituted.

(38) TABLE-US-00003 TABLE 3 The Scope of Oxone-acetone mediated syn-dihydroxylation reaction with various dihyronaphthalene derivatives Entry Substrate Product Yield.sup.b (%) embedded image embedded image 1 RH 1o 2o 65 2 ROMe 1p 2p 71 embedded image embedded image 3 RH 1q 2q 60 4 ROMe 1r 2r 64

(39) The present invention provides a simple, one step oxone-acetone mediated, metal free syn-dihydroxylation process for synthesis of dioxolo compounds of formula (IV) at ambient temperature and pressure,

(40) ##STR00060##
wherein
R is selected from aryl or benzyl;
comprising;
Reacting compound of formula (III)

(41) ##STR00061##
wherein,
R is selected from aryl or benzyl;
with 2 equivalents of powdered Oxone (H3K5S4O18) and 3 equivalents of sodium bicarbonate (NaHCO3) in a mixture of solvents 5:1:1 (acetone+ethyl acetate+water) and stirring the contents at room temperature for 2-5 h; evaporating the excess acetone under reduced pressure on completion of reaction, portioning the remaining reaction mixture between water and ethyl acetate followed by purification.

(42) The present invention relate to Oxone-acetone mediated syn-dihydroxylation reaction of cis and trans stilbene comprising reacting cis or trans stibene with 2 equivalents of powdered Oxone (H3K5S4O18)+ and 3 equivalents of sodium bicarbonate (NaHCO3) in a mixture of solvents 5:1:1 (acetone+ethyl acetate+water) and stirring the contents at room temperature for 2-5 h; evaporating the excess acetone under reduced pressure on completion of reaction, portioning the remaining reaction mixture between water and ethyl acetate followed by purification.

(43) The reactions are observed to be completely stereospecific. The trans-stilbene gave exclusively the corresponding trans-acetonide and trans-epoxide in moderate yields. Similarly, cis-stilbene gave the corresponding cis-acetonide and cis-epoxide.

(44) TABLE-US-00004 TABLE 4 The Scope of Oxone-acetone mediated syn-dihydroxylation reaction of cis and trans stilbene. Entry Reactant Product (with yield) 1. embedded image embedded image 2. embedded image embedded image

(45) The present invention demonstrates a simple method for the metal-free syn-dihydroxylation of the benzo-fused cyclic olefins/stilbenes employing Oxone. The reactions are highly selective towards the syn-dihydroxylation and the corresponding acetonides are isolated in excellent yields. The conditions are tolerable for the other functional groups on the side chains such as chloro, bromo, carbonyl and even olefin.

(46) For instance, in case of the indene (1m) having an alkenyl group at C2, the acetonide (2m) was isolated as the sole product, leaving the pendant alkenyl group intact. When (2m) was treated again with Oxone under the same conditions, the corresponding diastereomeric epoxides (6) were isolated. The reaction with tetra substituted indene (1l) was sluggish and gave exclusively the diketo derivative (5) as the main product. The 4-H (1H-inden-3-yl) butan-2-one (1n) when treated with oxone in acetone gave the inseparable mixture of compounds. Whereas, when acetone was replaced with acetonitrile, the 2,7-dioxabicyclo[2.2.1]heptane derivative (7) was obtained in good yield.

(47) Further, the dihydronaphthalene derivatives also underwent the syn-dihydroxylation smoothly and provided the corresponding acetonides in good yields. Similarly, the reaction with stilbenes 14a and 14b are sluggish and gave a mixture of epoxide and acetonide. However, these reactions are completely stereospecific. The trans-stilbene derivative 14a gave exclusively the corresponding trans-acetonide and trans-epoxide derivatives 15a and 15a in moderate yields, similarly cis-stilbene 14b gave cis-acetonide and cis-epoxide derivatives 15b and 15b in moderate yields. The 1-methylene-2,3-dihydro-1H-indene (compound 1m, table 2) gave the corresponding acetonide (2m, table 3) in very good yields. Amongst the two chromenes employed (table 5), the reaction with 2,2-dimethyl-2H-chromene 16a resulted in an inseparable mixture of corresponding epoxide and acetonides 17a and 17a in a 3:1 ratio. Whereas, there was no reaction with the 2,2-diphenyl-2H-chromene 16b.

(48) TABLE-US-00005 TABLE 5 Generality of Oxone-mediated syn-dihydroxyation of various benzo-fused cyclic olefins of formula (II) and alkenes of formula (IV) S. Product No. Substrate (Yield) 1 embedded image 8a embedded image 9a (65%) 2 embedded image 8b embedded image 9b (60%) 3 0embedded image 8c embedded image 9c (72%) 4 embedded image 10 embedded image 11 (58%) 5 embedded image 12 embedded image 13 (86%) 6 embedded image 14a embedded image 15a (48%) embedded image 15a (35%) 7 embedded image 14b 0embedded image 15b (35%) embedded image 15b (35%) 8 embedded image (RMe) 16a embedded image 17a (10%) embedded image 17a (30%) 9 (RPh) 16b (No Reaction)

(49) Furthermore, the inventors observed that by varying the proportion of the base employed i.e NaHCO3 complete conversion to ketone (Wacker type oxidation) in good to excellent yields can be achieved. The use of 12 eq. of base along with 2 eq. of Oxone was found to be the key for the complete conversion.

(50) The present invention discloses a simple process for preparation of compound of formula (X);

(51) ##STR00085##
wherein,
R1 is selected independently of each other from the group consisting of hydrogen, alkyl or aryl; R2 is hydrogen or alkoxy; and
n is 1 or 2;

(52) Comprising reacting compound of formula (IX)

(53) ##STR00086##
wherein R1, R2 and n are as defined above with 2 equivalents of powdered Oxone (H3K5S4O18) and 12 equivalents of sodium bicarbonate (NaHCO3) in a mixture of solvents 5:1:1 (acetone+ethyl acetate+water) and stirring the contents at room temperature for 2-5 h; evaporating the excess acetone under reduced pressure on completion of reaction, portioning the remaining reaction mixture between water and ethyl acetate followed by purification.

(54) TABLE-US-00006 TABLE 6 Scope of Wacker-type oxidation reaction Yield.sup.b Entry Substrate Product (%) embedded image embedded image 1 RH 1a 4a 78 2 RPh 1d 4d 61 3 RCH.sub.2Ph 1e 4e 75 4 R 1g 4g 74 (CH.sub.2).sub.3Cl 5 R 1h 4h 72 (CH.sub.2).sub.3N.sub.3 6 R 1f 4f 74 (CH.sub.2).sub.2CH.sub.3 7 embedded image 1i 0embedded image 4f 78 embedded image embedded image 8 RH 1p 4p 65 9 ROMe 1r 4r 72 embedded image embedded image 10 RH 1s 4s 61 11 ROMe 1t 4t 69

(55) The compounds of formula (X) comprises: (i) 1,3-Dihydro-2H-inden-2-one (4a); (ii) 1-Phenyl-1,3-dihydro-2H-inden-2-one (4d); (iii) 1-Benzyl-1,3-dihydro-2H-inden-2-one (4e); (iv) 3-propyl-1H-indene (4f); (v) 1-(3-Chloropropyl)-1,3-dihydro-2H-inden-2-one (4g); (vi) 1-(3-Azidopropyl)-1,3-dihydro-2H-inden-2-one (4h); (vii) 1-Phenyl-3,4-dihydronaphthalen-2(1H)-one (4p) (viii) 1-(p-Tolyl)-3,4-dihydronaphthalen-2(1H)-one (4r); (ix) 6-Methoxy-1-phenyl-3,4-dihydronaphthalen-2(1H)-one (4s); (x) 6-Methoxy-1-(p-tolyl)-3,4-dihydronaphthalen-2(1H)-one (4t); (xi) 1-Allyl-1,3-dihydro-2H-inden-2-one (4u)

(56) The library of dioxolo compounds/acetonides of formula (I) prepared by the simple, stereospecific process of the present invention finds use as anti-HIV, anti-cancer and as anti-malarials and may be further converted to its pharmaceutically active salts and may be thereafter incorporated in a pharmaceutical composition along with suitable pharmaceutical excipients for therapeutic use.

(57) Further, the library of dioxolo compounds/acetonides of formula (I) prepared by the simple, stereospecifc process of the present invention can be used as ligand for many other industrial applications.

(58) Further, the instant invention reveal that by simple variation in reaction conditions both dihydroxylations and the Wacker type of oxidation of benzo-fused olefins can be conducted selectively, apart from their well-established epoxidation.

EXAMPLES

(59) The following examples are given by way of illustration of the working of the invention in actual practice and therefore should not be construed to limit the scope of the present invention.

Example 1

General Methods

(60) All commercial solvents and reagents were used without purification. Column chromatography was carried out by using spectrochem silica gel (60-120, 100-200, 230-400 mesh). .sup.1H and .sup.13C NMR chemical shifts are reported in ppm downfield from Chloroform-d (=7.25) or TMS and coupling constants (J) are reported in Hertz (Hz). The following abbreviations are used to designate signal multiplicity: s=singlet, d=doublet, t=triplet, q=quartet, m=multiplet, b=broad. The Multiplicity of .sup.13C NMR signals was assigned with the help of DEPT spectra and the carbons represent C (quaternary), CH, CH.sub.2 and CH.sub.3 respectively.

Example 2

General Procedure for Substituted Indenes (A)

(61) ##STR00095##

(62) NaH (1.2 eq) was added to suspension of indene (1.0 eq) and alkyl bromide (1.1 eq) in DMF at 0 C. and the reaction mixture was stirred for 3 h at room temperature. The reaction mixture was quenched with cold water at 0 C. and portioned between water and ethyl acetate. The organic phase was separated and the aqueous phase was extracted with ethyl acetate (250 mL). The combined organic phase was washed with brine, dried (Na.sub.2SO.sub.4) and concentrated under reduced pressure. The crude product was purified by silica gel column (ethyl acetate and pet ether as eluent) to afford substituted indene.

Example 3

General Procedure for Syn-Dihydroxylation (B)

(63) To a solution of indene or substituted indene (1 eq.) in acetone (10 mL, for 1 mmol indene) were added ethyl acetate (2 mL), water (2 mL) and solid NaHCO.sub.3 (3 eq.) and the reaction mixture was stirred for 10 min. To this was added solid Oxone (2 eq.) and contents were stirred at room temperature for 2-5 h. After completion of the reaction, the excess acetone evaporated under reduced pressure and remaining reaction mixture portioned between water and ethyl acetate (20 mL each). The organic layer was separated and the aqueous layer extracted with ethyl acetate (220 mL). Combined organic layer was dried (Na.sub.2SO.sub.4) and concentrated under reduced pressure. The crude product was purified by silica gel column (ethyl acetate and pet ether as eluent) to afford the corresponding acetonide.

Example 4

General Procedure for Ketone (C)

(64) To a solution of indene (1 eq.) in acetone (10 mL, for 1 mmol indene) were added ethyl acetate (2 mL), water (2 mL) and solid NaHCO.sub.3 (12 eq.) and the reaction mixture was stirred for 10 min. To this was added solid Oxone (2 eq.) and contents were stirred at room temperature for 15-18 h. After completion of the reaction, the excess acetone evaporated under reduced pressure and remaining reaction mixture portioned between water and ethyl acetate (20 mL each). The organic layer was separated and the aqueous layer extracted with ethyl acetate (220 mL). Combined organic layer was dried (Na.sub.2SO.sub.4) and concentrated under reduced pressure. The crude product was purified by silica gel column (ethyl acetate and pet ether as eluent) to afford the corresponding ketone.

2,2-dimethyl-8,8a-dihydro-3aH-indeno[1,2-d][1,3]dioxole (2a)

(65) ##STR00096##

(66) The general procedure B was followed using (indene) 1a (100 mg, 0.86 mmol) as a substrate procured 2a (134 mg, 82%) as a white solid; R.sub.f 0.3 (5% ethyl acetate/pet. ether); mp: 65-68 C.; IR (CHCl.sub.3)v: 3018, 2934, 1608, 1460, 1372, 1216, 1056, 1018, 863, 758, 668 cm.sup.1; .sup.1H NMR (200 MHz, CDCl.sub.3): =1.21 (s, 3H), 1.40 (s, 3H), 3.14 (dd, J=2.2, 4.2 Hz, 2H), 4.99 (ddd, J=2.2, 4.2, 5.6 Hz, 1H), 5.54 (d, J=5.6 Hz 1H), 7.20-7.28 (m, 3H), 7.39-7.42 (m, 1H); .sup.13C-NMR (50 MHz, CDCl.sub.3): =25.9 (CH.sub.3), 27.5 (CH.sub.3), 37.8 (CH.sub.2), 79.4 (CH), 84.0 (CH), 110.7 (C), 125.4 (CH), 125.7 (3CH), 127.2 (CH), 128.9 (CH), 140.9 (C), 141.4 (C). (C.sub.12H.sub.14O.sub.2)

2,2-dimethyl-3a-propyl-8,8a-dihydro-3aH-indeno[1,2-d][1,3]dioxole (2b)

(67) ##STR00097##

(68) The general procedure B was followed using (3-propyl-1H-indene) 1b (100 mg, 0.52 mmol) as a substrate procured 2b (108 mg, 78%) as a colourless liquid; R.sub.f 0.3 (5% ethyl acetate/pet. ether); IR (CHCl.sub.3)v: 3026, 2984, 2933, 1607, 1459, 1368, 1247, 1126, 1057, 910, 848, 723 cm.sup.1; .sup.1H NMR (400 MHz, CDCl.sub.3): =0.91 (t, J=7.3 Hz, 3H), 1.05 (s, 3H), 1.19 (ddq, J=5.3, 7.3, 12.5 Hz, 1H),1.36-1.39 (m, 1H), 1.42 (s, 3H), 1.86 (ddd, J=2.2, 4.7, 12.6 Hz, 1H), 1.94 (ddd, J=2.2, 4.7, 12.6 Hz, 1H), 3.07 (d, J=2.4 Hz, 2H), 4.61 (t, J=2.4 Hz, 1H), 7.16-7.20 (m, 1H), 7.24-7.27 (m, 2H), 7.33-7.35 (m, 1H); .sup.13C-NMR (100 MHz, CDCl.sub.3): =14.4 (CH.sub.3), 17.5 (CH.sub.2), 27.5 (CH.sub.3), 27.8 (CH.sub.3), 37.1 (CH.sub.2), 39.9 (CH.sub.2), 83.5 (CH), 93.8 (C), 110.0 (C), 124.1 (CH), 125.3 (CH), 127.1 (CH), 128.4 (CH), 140.0 (C), 145.4 (C). (C.sub.15H.sub.20O.sub.2)

3a-(3-chloropropyl)-2,2-dimethyl-8,8a-dihydro-3aH-indeno[1,2-d][1,3]dioxole (2c)

(69) ##STR00098##

(70) The general procedure B was followed using (3-(3-chloropropyl)-1H-indene) 1c (100 mg, 0.52 mmol) as a substrate procured 2c (96 mg, 69%) as a yellow liquid; R.sub.f 0.3 (10% ethyl acetate/pet. ether); IR (CHCl.sub.3)v: 3355, 3065, 2956, 1711, 1604, 1457, 1396, 1295, 1018, 770, 720 cm.sup.1; .sup.1H NMR (400 MHz, CDCl.sub.3): =1.03 (s, 3H), 1.40 (s, 3H), 1.70-1.82 (m, 1H), 1.90-2.06 (m, 3H), 3.07 (d, J2.5 Hz, 2H), 3.36-3.41 (m, 1H), 3.50-3.55 (m, 1H), 4.59 (dd, J=2.5, 3.9 Hz, 1H), 7.22 (dd, J=2.7, 7.6 Hz, 1H), 7.26 (dd, J=2.7, 5.6 Hz, 2H), 7.34 (dd, J=2.5, 7.6 Hz, 1H); .sup.13C-NMR (100 MHz, CDCl.sub.3): =27.5 (CH.sub.3), 27.8 (CH.sub.3), 33.7 (CH.sub.2), 34.8 (CH.sub.2), 37.0 (CH.sub.2), 45.1 (CH2), 83.5 (CH), 93.1 (C), 110.4 (C), 124.1 (CH), 125.5 (CH), 127.3 (CH), 128.7 (CH), 139.9 (C), 144.8 (C). (C.sub.15H.sub.19ClO.sub.2)

8-(4-bromobutyl)-2,2-dimethyl-8,8a-dihydro-3aH-indeno[1,2-d][1,3]dioxole (2d)

(71) ##STR00099##

(72) The general procedure B was followed using (3-(4-bromobutyl)-1H-indene) 1d (100 mg, 0.52 mmol) as a substrate procured 2d (107 mg, 77%) as a brown liquid; R.sub.f 0.3 (5% ethyl acetate/pet. ether); IR (CHCl.sub.3)v: 2984, 2931, 1606, 1456, 1371, 1248, 1208, 1049, 867, 753 cm.sup.1; .sup.1H NMR (400 MHz, CDCl.sub.3): =1.21 (s, 3H), 1.41 (s, 3H), 1.48-1.52 (m, 1H), 1.54-1.60 (m, 2H), 1.63-1.68 (m, 1H), 1.86-1.93 (m, 2H), 3.28 (dd, J=5.4, 8.8 Hz, 1H), 3.42 (t, J=6.8 Hz, 2H), 4.63 (dd, J=1.1, 5.6 Hz, 1H), 5.57 (d, J=5.6 Hz, 1H), 7.21 (d, J=7.3 Hz, 1H), 7.28 (dd, J=1.4, 7.3 Hz, 1H), 7.32 (dt, J=1.3, 7.3 Hz, 1H) 7.42 (d, J=7.3 Hz, 1H); .sup.13C-NMR (100 MHz, CDCl.sub.3): =25.9 (CH.sub.2), 26.0 (CH.sub.3), 27.5 (CH.sub.3), 32.7 (CH.sub.2), 33.4 (CH.sub.2), 33.8 (CH.sub.2), 50.1 (CH), 83.2 (CH), 85.4 (CH), 111.0 (C), 125.1 (CH), 125.8 (CH), 127.6 (CH), 129.1 (CH), 141.0 (C), 144.9 (C). (C.sub.16H.sub.21BrO.sub.2)

8-benzyl-2,2-dimethyl-8,8a-dihydro-3aH-indeno[1,2-d][1,3]dioxole (2e)

(73) ##STR00100##

(74) The general procedure B was followed using (1-benzyl-1H-indene) 1e (100 mg, 0.48 mmol) as a substrate procured 2e (134 mg, 77%) as a colourless liquid; R.sub.f 0.3 (5% ethyl acetate/pet. ether); IR (CHCl.sub.3)v: 3027, 2985, 2925, 1603, 1454, 1370, 1210, 1059, 866, 753 cm.sup.1; .sup.1H NMR (400 MHz, CDCl.sub.3): =1.15 (s, 3H), 1.36 (s, 3H), 2.88 (d, J=7.5 Hz, 2H), 3.68 (t, J=7.5 Hz, 1H), 4.67 (d, J=5.4 Hz, 1H), 5.41 (d, J=5.4 Hz, 1H), 6.97 (dd, J=1.8, 6.6 Hz, 1H), 7.11 (dd, J=1.5, 7.8 Hz, 2H), 7.21-7.25 (m, 3H), 7.26-7.29 (m, 2H), 7.39 (dd, J=2.1, 7.1 Hz, 1H); .sup.13C-NMR (100 MHz, CDCl.sub.3): =26.1 (CH.sub.3), 27.5 (CH.sub.3), 40.8 (CH.sub.2), 50.9 (CH), 83.0 (CH), 84.5 (CH), 110.7 (C), 125.4 (CH), 125.6 (CH), 126.3 (CH), 127.7 (CH), 128.4 (2CH), 128.7 (CH), 129.2 (2CH), 139.0 (C), 141.6 (C), 144.2 (C). (C.sub.12H.sub.20O.sub.2)

3a-benzyl-2,2-dimethyl-8,8a-dihydro-3aH-indeno[1,2-d][1,3]dioxole (2f)

(75) ##STR00101##

(76) The general procedure B was followed using (3-benzyl-1H-indene) 1f (100 mg, 0.48 mmol) as a substrate procured 2f (102 mg, 75%) as a white solid; R.sub.f 0.3 (5% ethyl acetate/pet. ether); mp: 77-79 C.; IR (CHCl.sub.3)v: 3066, 3017, 2988, 1604, 1454, 1380, 1216, 1056, 756 cm.sup.1; .sup.1H NMR (500 MHz, CDCl.sub.3): =1.05 (s, 3H), 1.22 (s, 3H), 2.65 (dd, J=4.8, 17.2 Hz, 1H), 2.95 (d, J=17.2 Hz, 1H), 3.11 (d, J=13.7 Hz, 1H), 3.23 (d, J=13.8 Hz, 1H), 4.59 (d, J=4.8 Hz, 1H), 7.04 (dd, J=3.7, 7.4 Hz, 2H), 7.11 (dd, J=3.8, 5.5 Hz, 1H), 7.17-7.20 (m, 3H), 7.23-7.25 (m, 2H), 7.32 (dd, J=2.3, 5.5 Hz, 1H); .sup.13C-NMR (125 MHz, CDCl.sub.3): =27.2 (CH3), 27.8 (CH.sub.3), 36.4 (CH.sub.2), 43.7 (CH.sub.2), 82.8 (CH), 93.4 (C), 110.3 (C), 124.3 (CH), 125.3 (CH), 126.5 (CH), 127.1 (CH), 127.8 (2CH), 128.5 (CH), 130.5 (2CH), 136.1 (C), 140.3 (C), 145.1 (C). (C.sub.19H.sub.20O.sub.2)

3a-isopropyl-2,2-dimethyl-8,8a-dihydro-3aH-indeno[1,2-d][1,3]dioxole (2g)

(77) ##STR00102##

(78) The general procedure B was followed using (3-isopropyl-1H-indene) 1g (100 mg, 0.52 mmol) as a substrate procured 2g (87 mg, 63%) as a colourless liquid; R.sub.f 0.3 (5% ethyl acetate/pet. ether); IR (CHCl.sub.3)v: 3025, 2962, 2933, 1606, 1471, 1378, 1368, 1243, 1219, 1165, 1094, 1059, 907, 849, 751 cm.sup.1; .sup.1H NMR (500 MHz, CDCl.sub.3): =0.81 (d, J=7.0 Hz, 3H), 0.99 (d, J=7.0 Hz, 6H), 1.41 (s, 3H), 2.29 (pent, J=7.0 Hz, 13.8 Hz, 1H), 3.04 (d, J=4.0 Hz, 2H), 4.63 (dd, J=1.6, 4.0 Hz, 1H), 7.20 (d, J=6.8 Hz, 1H), 7.22-7.28 (m, 2H), 7.34 (d, 6.9 Hz, 1H); .sup.13C-NMR (125 MHz, CDCl.sub.3): =17.4 (CH.sub.3), 17.5 (CH.sub.3), 27.6 (CH.sub.3), 28 (CH.sub.3), 34.5 (CH), 38.3 (CH.sub.2), 81.7 (CH), 96.9 (C), 110.1 (C), 124.6 (CH), 125.2 (CH), 127 (CH), 128.4 (CH), 140.8 (C), 144.5 (C). (C.sub.15H.sub.20O.sub.2)

3a-cyclohexyl 2,2 dimethyl-8,8a-dihydro-3aH-indeno[2,1-d][1,3]dioxole (2h)

(79) ##STR00103##

(80) The general procedure B was followed using (3-cyclohexyl-1H-indene) 1h (100 mg, 0.50 mmol) as a substrate procured 2h (89 mg, 65%) as a colourless liquid; R.sub.f 0.3 (5% ethyl acetate/pet. ether); IR (CHCl.sub.3)v: 3070, 2984, 2928, 1732, 1605, 1451, 1377, 1367, 1244, 1175, 1058, 848, 752 cm.sup.1; .sup.1H NMR (500 MHz, CDCl.sub.3): =0.92-0.97 (m, 2H), 0.99 (s, 3H), 1.07-1.15 (m, 2H), 1.24-1.28 (m, 2H), 1.40 (s, 3H), 1.66 (d, J=9.7 Hz, 2H), 1.79 (d, J=13.4 Hz, 1H), 1.93 (tt, J=3.0, 12.1 Hz, 1H), 2.04 (d, J=12.9 Hz, 1H), 3.0 (d, J=3.9 Hz, 2H), 4.86 (dd, J=1.8, 3.3 Hz, 1H), 7.19 (dd, J=2.2, 7.1 Hz, 1H), 7.24-7.27 (m, 2H), 7.34 (dd, J=2.2, 7.1 Hz, 1H) .sup.13C-NMR (125 MHz, CDCl.sub.3): =26.2 (CH.sub.2), 26.4 (2CH.sub.2), 27.5 (CH.sub.2), 27.6 (2CH.sub.2), 28.1 (CH.sub.3), 38.1 (CH.sub.2), 44.6 (CH), 81.9 (CH), 96.5 (CH), 110.0 (C), 124.6 (CH), 125.1 (CH), 127.0 (CH), 128.3 (CH), 140.8 (C), 144.9 (C). C.sub.18H.sub.24O.sub.2

2,2-dimethyl-3a-phenyl-8,8a-dihydro-3aH-indeno[1,2-d][1,3]dioxole (2i)

(81) ##STR00104##

(82) The general procedure B was followed using (3-phenyl-1H-indene) 1i (100 mg, 0.52 mmol) as a substrate procured 2i (85 mg, 82%) as a white solid; R.sub.f 0.3 (5% ethyl acetate/pet. ether); mp: 58-59 C.; IR (CHCl.sub.3)v: 3018, 2932, 1601, 1447, 1372, 1216, 1053, 851, 755 cm.sup.1; .sup.1H NMR (400 MHz, CDCl.sub.3): =1.24 (s, 3H), 1.54 (s, 3H), 3.19 (d, J=17.3 Hz, 1H), 3.28 (dd, J=4.6, 17.3 Hz, 1H), 4.70 (d, J=4.6 Hz, 1H), 7.20-7.25 (m, 5H), 7.27-7.33 (m, 4H); .sup.13C-NMR (100 MHz, CDCl.sub.3): =26.9 (CH.sub.3), 27.7 (CH.sub.3), 36.8 (CH.sub.2), 87.3 (CH), 95.2 (C), 111.0 (C), 125.2 (CH), 125.5 (3CH), 127.3 (CH), 127.7 (CH), 128.3 (2CH), 128.6 (CH), 140.6 (C), 142.4 (C), 145.7 (C). (C.sub.18H.sub.18O.sub.2)

7-(2,2-dimethyl-8,8a-dihydro-3aH-indeno[2,1-d][1,3]dioxol-3a-yl)heptan-2-one (2j)

(83) ##STR00105##

(84) The general procedure B was followed using (7-(1H-inden-3-yl)heptan-2-one) 1j (100 mg, 0.44 mmol) as a substrate procured 2j (93 mg, 72%) as a colourless liquid; R.sub.f 0.3 (10% ethyl acetate/pet. ether); IR (CHCl.sub.3)v: 3024, 2985, 2934, 1716, 1459, 1368, 1245, 1220, 1055, 1017, 853, 754 cm.sup.1; .sup.1H NMR (500 MHz, CDCl.sub.3): =1.04 (s, 3H), 1.10-1.19 (m, 1H), 1.23-1.31 (m, 2H), 1.34-1.39 (m, 1H), 1.41 (s, 3H), 1.49-1.57 (m, 2H), 1.79-1.94 (m, 2H), 2.10 (s, 3H), 2.39 (t, J=7.2 Hz, 2H), 3.06 (d, J=3.0 Hz, 2H), 4.59 (t, J=2.6 Hz, 1H), 7.20 (dd, J=2.9, 7.0 Hz, 1H), 7.26 (dd, J=2.6, 6.7 Hz, 2H), 7.34 (dd, J=2.9, 7.0 Hz, 11H); .sup.13C-NMR (100 MHz, CDCl.sub.3): =23.5 (CH.sub.2), 23.9 (CH.sub.2), 27.4 (CH.sub.3), 27.8 (CH.sub.3), 29.4 (CH.sub.2), 29.8 (CH.sub.3), 37.1 (CH.sub.2), 37.4 (CH.sub.2), 43.5 (CH.sub.2), 83.5 (CH), 93.6 (C), 110.0 (C), 124.1 (CH), 125.3 (CH), 127.1 (CH), 128.4 (CH), 140.0 (C), 145.2 (C), 209.1 (C). C.sub.19H.sub.26O.sub.3

2,2-dimethyl-3a,8a-dihydrospiro[cyclopentane-1,8-indeno[2,1-d][1,3]dioxole](2k)

(85) ##STR00106##

(86) The general procedure B was followed using (spiro[cyclopentane-1,1-indene]) 1k (100 mg, 0.2 mmol) as a substrate procured 2k (101 mg, 73%) as a colourless liquid; R.sub.f 0.3 (5% ethyl acetate/pet. ether); IR (CHCl.sub.3)v: 2933, 1746, 1606, 1455, 1369, 1242, 1155, 1073, 756 cm.sup.1; .sup.1H NMR (400 MHz, CDCl.sub.3): =1.13 (s, 3H), 1.41 (s, 3H), 1.54-1.59 (m, 2H), 1.62-1.69 (m, 1H), 1.72-1.78 (m, 1H), 1.83-1.87 (m, 4H), 4.46 (d, J=5.3 Hz, 1H), 5.58 (d, J=5.3 Hz, 1H), 7.18 (d, J=7.6 Hz, 1H), 7.25 (t, J=7.5 Hz, 1H), 7.32 (t, J=7.5 Hz, 1H), 7.38 (d, J=7.6 Hz, 1H); .sup.13C-NMR (100 MHz, CDCl.sub.3): =25.2 (CH.sub.2), 25.4 (CH.sub.2), 26.5 (CH.sub.3), 27.6 (CH.sub.3), 33.5 (CH.sub.2), 41.7 (CH.sub.2), 57.1 (C), 82.6 (CH), 87.6 (CH), 111.2 (C), 123.0 (CH), 125.2 (CH), 127.2 (CH), 129.0 (CH), 141.0 (C), 149.2 (C). C.sub.16H.sub.20O.sub.2

3a-(but-3-enyl)-2,2-dimethyl-8,8a-dihydro-3aH-indeno[2,1-d][1,3]dioxole (2m)

(87) ##STR00107##

(88) The general procedure B was followed using (3-(but-3-en-1-yl)-1H-indene) 1m (100 mg, 0.59 mmol) as a substrate procured 2m (105 mg, 73%) as a colourless liquid; R.sub.f 0.3 (8% ethyl acetate/pet. ether); IR (CHCl.sub.3)v: 3074, 2984, 2931, 1641, 1607, 1459, 1369, 1245, 1166, 1058, 911, 761 cm.sup.1; .sup.1H NMR (500 MHz, CDCl.sub.3): =1.05 (s, 3H), 1.42 (s, 3H), 1.90-1.94 (m, 1H), 1.95-1.97 (m, 1H), 2.00-2.05 (m, 1H), 2.11-2.19 (m, 1H), 3.08 (d, J=2.6 Hz, 2H), 4.63 (t, J=2.6 Hz, 1H), 4.94 (dd, J=1.7, 10.1 Hz, 1H), 5.01 (dd, J=1.7, 17.1 Hz, 1H), 5.82 (m, 1H), 7.19-7.22 (m, 1H), 7.24-7.28 (m, 2H), 7.33-7.35 (m, 1H); .sup.13C-NMR (125 MHz, CDCl.sub.3): =27.5 (CH.sub.3), 27.8 (CH.sub.3), 28.5 (CH.sub.2), 36.6 (CH.sub.2), 37.1 (CH.sub.2), 83.4 (CH), 93.5 (C), 110.2 (C), 114.6 (CH.sub.2), 124.2 (CH), 125.4 (CH), 127.2 (CH), 128.5 (CH), 138.0 (C), 140.1 (C), 145.1 (C). (C.sub.16H.sub.20O.sub.2),

2,2,9b-Trimethyl-3a,4,5,9b-tetrahydronaphtho[2,1-d][1,3]dioxole (2o)

(89) ##STR00108##

(90) The general, procedure B was followed using 4-methyl-1,2-dihydronaphthalene (1o) (100 mg, 0.69 mmol) as a substrate procured 2o (99 mg, 65%) as a colorless liquid; R.sub.f 0.3 (5% ethyl acetate/pet. ether); IR (CHCl.sub.3)v: 3022, 2982, 2870, 1492, 1439, 1367, 1255, 123.7, 1107, 1090, 1001, 847, 762 cm.sup.1; .sup.1H NMR (400 MHz, CDCl.sub.3): =0.96 (s, 3H), 1.42 (s, 3H), 1.57 (s, 3H), 1.90-1.98 (m, 1H), 2.21-2.28 (m, 1H), 2.64 (m, 1H), 3.04 (ddt, J=4.5, 5.3 Hz, 1H), 4.17 (dd, J=1.4, 7.7 Hz, 1H), 7.06 (d, J=1.4, 7.5 Hz, 1H), 7.17 (dt, J=1.4, 7.3 Hz, 1H), 7.22 (t, J=7.6 Hz, 1H), 7.48 (d, J=7.5 Hz, 1H); .sup.13C-NMR (100 MHz, CDCl.sub.3): =23.7 (CH.sub.3), 24.1 (CH.sub.2), 27.1 (CH.sub.3), 27.3 (CH.sub.3), 25.6 (CH.sub.3), 79.0 (CH), 79.1 (C), 108.0 (C), 126.5 (CH), 126.9 (CH), 127.8 (CH), 127.9 (CH), 135.0 (C), 140.2 (C) ppm; HRMS (ESI+): calcd. for C.sub.14H.sub.18O.sub.2Na.sup.+ 241.1199. found 241.1199.

7-Methoxy-2,2,9b-trimethyl-3a,4,5,9b-tetrahydronaphtho[1,2-d]1,3dioxole (2p)

(91) ##STR00109##

(92) The general procedure B was followed using 7-methoxy-4-methyl-1,2-dihydronaphthalene (1p) (100 mg, 0.57 mmol) as a substrate procured 2p (101 mg, 71%) as a colorless liquid; R.sub.f 0.3 (10% ethyl acetate/pet. ether); .sup.1H NMR (500 MHz, CDCl.sub.3): =0.97 (s, 3H), 1.41 (s, 3H), 1.54 (s, 3H), 1.94 (td, J=5.0, 13.4 Hz, 1H), 2.25 (d, J=13.4 Hz, 1H), 2.58 (dd, J=5.0, 16.4 Hz, 1H), 3.06 (ddt, J=5.0, 12.2 Hz, 1H), 3.77 (s, 3H), 4.13 (m, 1H), 6.56 (s, 1H), 6.79 (d, J=8.5 Hz, 1H), 7.30 (d, J=8.5 Hz 1H); .sup.13C-NMR (125 MHz, CDCl.sub.3): =24.1 (CH.sub.2), 24.3 (CH.sub.2), 27.3 (3CH.sub.3), 55.12 (CH.sub.3), 79.0 (C), 79.1 (CH), 107.8 (C), 112.0 (CH), 113.1 (CH), 129.1 (CH), 132.7 (C), 136.5 (C), 158.3 (C) ppm; GC-HRMS (+EI): calcd. for C.sub.15H.sub.20O.sub.3.sup.+ 248.1407. found 248.1425.

2,2-Dimethyl-9b-phenyl-3a,4,5,9btetrahydronaphtho[2,1-d][1,3]dioxole (2q)

(93) ##STR00110##

(94) The general procedure B was followed using 4-phenyl-1,2-dihydronaphthalene (1q) (100 mg, 0.49 mmol) as a substrate procured 2q (82 mg, 60%) as a colorless solid; R.sub.f 0.3 (5% ethyl acetate/pet. ether); mp: 95-97 C.; .sup.1H NMR (400 MHz, CDCl.sub.3): =1.13 (s, 3H), 1.60 (s, 3H), 2.05 (ddt, J=1.6, 5.2, 13.6 Hz, 1H), 2.17-2.24 (m, 1H), 2.75 (dd, J=4.9, 16.1 Hz, 1H), 3.20 (dt, J5.2, 12.4 Hz, 1H), 4.19 (d, J=4.9 Hz, 1H), 7.08 (d, J=7.5 Hz, 1H), 7.15 (d, J=6.8 Hz, 2H), 7.19 (d, J6.8 Hz, 1H), 7.24-7.28 (m, 1H), 7.29-7.30 (m, 4H); .sup.13C-NMR (100 MHz, CDCl.sub.3): =22.9 (CH.sub.2), 23.4 (CH2), 27.0 (CH.sub.3), 27.5 (CH.sub.3), 80.5 (CH), 83.9 (C), 108.7 (C), 126.6 (3CH), 127.1 (CH), 127.2 (CH), 127.7 (CH), 127.9 (2CH), 130.5 (CH), 136.1 (C), 139.3 (C), 144.5 (C) ppm; HRMS (ESI+): calcd. for C.sub.19H.sub.20O.sub.2Na.sup.+ 303.1356. found 303.1353.

7-Methoxy-2,2-dimethyl-9b-phenyl-3a,4,5,9b-tetrahydronaphtho[1,2-d][1,3] dioxole (2r)

(95) ##STR00111##

(96) The general procedure B was followed using 7-methoxy-4-phenyl-1,2-dihydronaphthalene (1r) (100 mg, 0.42 mmol) as a substrate procured 2r (84 mg, 64%) as a white solid; R.sub.f 0.3 (15% ethyl acetate/pet. ether); H.sup.1 NMR (500 MHz) : 1.14 (s, 3H), 1.59 (s, 3H), 2.21 (ddd, J=5.1, 13.2 Hz, 1H), 2.20 (d, J=14.2 Hz, 1H), 2.58 (dd, J=5.0, 16.8 Hz, 1H), 3.06 (ddd, J=5.5, 13.3 Hz, 1H), 3.79 (s, 3H), 4.17 (s, 1H), 6.56 (s, 1H), 6.69 (dd, J=2.2, 8.2 Hz, 1H), 6.98 (d, J=2.2 Hz, 1H), 7.2-7.3 (m, 1H), 7.27-7.30 (m, 4H); .sup.13C NMR (125 MHz) : 23.1 (CH.sub.2), 23.8 (CH.sub.2), 27.1 (CH.sub.3), 27.5 (CH.sub.3), 55.8 (CH.sub.3), 80.5 (CH), 83.5 (C), 108.6 (C), 111.5 (CH), 113.4 (CH), 126.6 (2CH), 127.1 (CH), 127.9 (2CH), 131.7 (CH), 137.5 (2C), 144.7 (C), 158.4 (C) ppm; HRMS (ESI+): calcd. for C.sub.20H.sub.22O.sub.3Na.sup.+ 333.1461. found 333.1458.

2-(2-benzoylphenyl)-2-methyl-1-phenylpropan-1-one (5)

(97) ##STR00112##

(98) The general procedure B was followed using (1,1-dimethyl-2,3-diphenyl-1H-indene) 1l (100 mg, 0.34 mmol) as a substrate procured 5 (14 mg, 13%) as a colourless liquid; R.sub.f 0.3 (10% ethyl acetate/pet. ether); IR (CHCl.sub.3)v: 3025,2962, 2933, 1606, 1716, 1685, 1368, 1243, 1219, 1165, 1094, 1059, 907, 849, 751 cm.sup.1; .sup.1H NMR (400 MHz, CDCl.sub.3): 1.66 (s, 6H), 7.16 (t, J=8.0 Hz, 2H), 7.23 (dd, J=1.3, 7.5 Hz, 1H), 7.27-7.33 (m, 4H), 7.50 (t, J=7.8 Hz, 1H), 7.51-7.53 (m, 2H), 7.55-7.58 (m, 3H), 7.63 (d, J=7.78 Hz, 1H); .sup.13C-NMR (100 MHz, CDCl.sub.3): =29.0 (2CH.sub.3), 51.68 (C), 125.7 (CH), 127.4 (CH), 127.8 (2CH), 128.11 (2CH), 129.8 (2CH), 130.1 (CH), 130.3 (2CH), 130.7 (CH), 131.5 (CH), 132.9 (CH), 136.1 (C), 137.2 (C), 137.5 (C), 144.9 (C), 197.8 (C), 202.1 (C). (C.sub.23H.sub.20O.sub.2).

2,2-dimethyl-3a-(2-(oxiran-2-yl)ethyl)-3a,8a-dihydro-8H-indeno[1,2-d][1,3]dioxole (6)

Diastereomeric Mixture with 50:50 Percent

(99) ##STR00113##

(100) The general procedure B was followed using (3a-(but-3-enyl)-2,2-dimethyl-8,8a-dihydro-3aH-indeno[2,1-d][1,3]dioxole) 2m (110 mg, 0.54 mmol) as a substrate procured 6 (110 mg, 79%) as a colourless liquid; R.sub.f 0.5 (20% ethyl acetate/pet. ether); IR (CHCl.sub.3)v: 3074, 2984, 2931, 1641, 1607, 1459, 1369, 1245, 1166, 1058, 911, 761 cm.sup.1; .sup.1H NMR (500 MHz, CDCl.sub.3): =1.03 (s, 1.5H), 1.04 (s, 1.5H), 1.40 (s, 1.5H), 1.41 (s, 1.5H), 1.42-1.46 (m, 0.5H), 1.46-1.50 (m, 0.5H), 1.57-1.64 (m, 0.5H), 1.71-1.78 (m, 0.5H), 1.93-2.00 (m, 1H), 2.00-2.12 (m, 1H), 2.41 (dd, J=2.7, 4.9 Hz, 0.5H), 2.48 (dd, J=2.7, 4.9 Hz, 0.5H), 2.71 (t, J=4.4 Hz, 0.5H), 2.74 (t, J=4.4 Hz, 0.5H), 2.88-2.92 (m, 1H), 3.03-3.07 (m, 1H), 3.07-3.10 (m, 1H), 4.58-4.59 (m, 1H), 7.19-7.21 (m, 1H), 7.23-7.25 (m, 1H), 7.25-7.28 (m, 1H), 7.32-7.33 (m, 0.5H), 7.33-7.35 (m, 0.5H); .sup.13C-NMR (125 MHz, CDCl.sub.3): =27.3 (CH2), 27.4 (CH.sub.2), 27.5 (2CH.sub.3), 27.8 (2CH.sub.3), 33.2 (CH.sub.2), 33.5 (CH.sub.2), 37.0 (CH.sub.2), 37.1 (CH.sub.2), 47.0 (2CH.sub.2), 52.0 (CH), 52.1 (CH), 83.3 (CH), 83.6 (CH), 93.1 (2C), 110.3 (2C), 124.1 (2CH), 125.4 (2CH), 127.3 (2CH), 128.6 (2CH), 139.9 (C), 140.1 (C), 144.7 (C), 144.9 (C). (C.sub.16H.sub.20O.sub.3)

2-methyl-3,4,9,9a-tetrahydro-2H-2,4a-epoxyindeno[2,1-b]pyran (7)

(101) ##STR00114##

(102) To a solution of 4-(1H-inden-3-yl)butan-2-one 1n (100 mg, 0.54 mmol) in acetonitrile (10 mL) was added ethyl acetate (2 mL), water (2 mL), NaHCO.sub.3 (135.3 mg, 1.61 mmol) and the reaction mixture was stirr for 10 min then solid oxone was added (660.1 mg, 1.07 mmol), stirr the reaction mixture at room temperature for 10 h. After completion of the reaction, reaction mixture extracted with water and ethyl acetate (350 mL). The organic layer was dried over sodium sulphate and evaporated under reduced pressure. The crude product was purified by silica gel column (ethyl acetate and pet ether as eluent) to afford 7 (80 mg, 74%) as a white solid; R.sub.f 0.3 (5% ethyl acetate/pet. ether); mp: 141-145 C.; IR (CHCl.sub.3)v: 2982, 2935, 1607, 1461, 1381, 1214, 1134, 1082, 1015, 937, 757 cm.sup.1; .sup.1H NMR (500 MHz, CDCl.sub.3): =1.55 (t, J=4.0 Hz, 1H), 1.65 (s, 3H), 2.12 (dt, J=5.0, 8.5 Hz, 1H), 2.25 (dd, J=7.2, 12.1 Hz, 1H), 2.71 (dd, J=10.3, 14.6 Hz, 1H), 3.02 (dd, J=7.2, 15.0 Hz, 1H), 3.15 (dt, J=7.7, 13.1 Hz, 1H), 4.7 (dd, J=7.9, 10.2 Hz, 1H), 7.12-7.16 (m, 2H), 7.17-7.20 (m, 2H); .sup.13C-NMR (125 MHz, CDCl.sub.3): =23.4 (CH.sub.3), 29.6 (CH.sub.2), 37.1 (CH.sub.2), 38.3 (CH.sub.2), 77.1 (CH), 94.3 (C), 107.9 (C), 122.5 (CH), 124.1 (CH), 124.6 (CH), 127.7 (CH), 136.8 (C), 146.7 (C). C.sub.13H.sub.14O.sub.2.

(4S,5S)-2,2-Dimethyl4,5-diphenyl-1,3-dioxolane (9a)

(103) ##STR00115##

(104) The general procedure B was followed using trans-stilbene (8a) (100 mg, 0.56 mmol) as a substrate procured 9a (62 mg, 44%) as a colorless liquid; R.sub.f 0.3 (5% ethyl acetate/pet. ether); mp: 65-68 C.; .sup.1H NMR (400 MHz, CDCl.sub.3): =1.67 (s, 6H), 4.78 (s, 2H), 7.21-7.23 (m, 3H), 7.30-7.32 (m, 6H), 7.35 (d, J=3.3 Hz, 1H); .sup.13C-NMR (100 MHz, CDCl.sub.3): =27.2 (2CH.sub.3), 85.4 (2CH), 109.4 (C), 126.7 (4CH), 128.2 (2CH), 128.4 (4CH), 136.7 (2C) ppm.

(4S,5R)-2,2-Dimethyl-4,5-diphenyl-1,3-dioxolane (9b)

(105) ##STR00116##

(106) The general procedure B was followed using cis-stilbene (8b) (100 mg, 0.55 mmol) as a substrate procured 9b (51 mg, 36%) as a colorless liquid; R.sub.f 0.3 (5% ethyl acetate/pet. ether); mp: 65-68 C.; .sup.1H NMR (400 MHz, CDCl.sub.3): =1.62 (s, 3H), 1.83 (s, 3H), 5.49 (br.s, 2H), 6.90-7.23 (m, 10H) ppm.

1,3-Dihydro-2H-inden-2-one (4a)

(107) ##STR00117##

(108) The general procedure C was followed using 1H-indene (1a) (100 mg, 0.86 mmol) as a substrate procured 4a (89 mg, 78%) as a white solid; R.sub.f 0.3 (15% ethyl acetate/pet. ether); H.sup.1 NMR (200 MHz): =3.57 (s, 4H), 7.26-7.31 (m, 4H) ppm; .sup.13C NMR (50 MHz): =44.1 (2CH.sub.2), 125.1 (2CH), 127.4 (2CH), 137.8 (2C), 215.3 (C) ppm.

1-Phenyl-1,3-dihydro-2H-inden-2-one (4d)

(109) ##STR00118##

(110) The general procedure C was followed using 3-phenyl-1H-indene (1d) (100 mg, 0.52 mmol) as a substrate procured 4d (66 mg, 61%) as a colorless solid; R.sub.f 0.3 (15% ethyl acetate/pet. ether); H.sup.1 NMR (200 MHz): =3.62 (s, 2H), 4.63 (s, 1H), 7.04-7.16 (m, 3H), 7.20-7.36 (s, 6H) ppm.

1-Benzyl-1,3-dihydro-2H-inden-2-one (4e)

(111) ##STR00119##

(112) The general procedure C was followed using 3-benzyl-1H-indene (1e) (100 mg, 0.48 mmol) as a substrate procured 4e (81 mg, 75%) as a colorless solid; R.sub.f 0.3 (15% ethyl acetate/pet. ether); H.sup.1 NMR (200 MHz): 2.93-3.04 (m, 1H), 3.19-3.54 (m, 3H), 3.74-3.80 (m, 1H), 6.92-6.96 (m, 1H), 7.04-7.09 (m, 2H), 7.16-7.21 (m, 6H) ppm.

3-propyl-1H-indene (4f)

(113) ##STR00120##

(114) The general procedure C was followed using 3-propyl-1H-indene (1f) (100 mg, 0.63 mmol) as a substrate procured 4f (83 mg, 74%) as a colorless liquid; R.sub.f 0.3 (10% ethyl acetate/pet. ether); H.sup.1 NMR (200 MHz): 0.922 (t, J=7.4 Hz, 3H), 1.28-1.42 (m, 2H), 1.81-1.91 (m, 2H), 5.76 (t, J5.7 Hz, 1H), 3.52 (s, 2H), 7.26-7.31 (m, 4H) ppm.

1-(3-Chloropropyl)-1,3-dihydro-2H-inden-2-one (4g)

(115) ##STR00121##

(116) The general procedure C was followed using 3-(3-chloropropyl)-1H-indene (1g) (100 mg, 0.5 mmol) as a substrate procured 4g (80 mg, 74%) as a yellow liquid; R.sub.f 0.3 (15% ethyl acetate/pet. ether); H.sup.1 NMR (500 MHz): =1.75-1.90 (m, 2H), 1.94-2.02 (m, 1H), 2.05-2.12 (m, 1H), 3.48-3.59 (m, 5H), 7.26-7.31 (m, 4H); .sup.13C NMR (125 MHz): =28.7 (CH.sub.2), 29.0 (CH.sub.2), 43.4 (CH.sub.2), 44.8 (CH.sub.2), 51.8 (CH), 1) 124.4 (CH), 124.9 (CH), 127.5 (CH), 127.6 (CH), 136.8 (C), 140.4 (C), 217.5 (C) ppm; HRMS (ESI+): calcd. for C.sub.12H.sub.13OClNa.sup.+231.0547. found 231.0548.

1-(3-Azidopropyl)-1,3-dihydro-2H-inden-2-one (4h)

(117) ##STR00122##

(118) The general procedure C was followed using 3-(3-azidopropyl)-1H-indene (1h) (100 mg, 0.50 mmol) as a substrate procured 4h (78 mg, 72%) as a yellow liquid; R.sub.f 0.3 (15% ethyl acetate/pet. ether); H.sup.1 NMR (500 MHz): =1.57-1.71 (m, 2H), 1.91-1.99 (m, 1H), 2.01-2.09 (m, 1H), 3.12-3.31 (m, 2H), 3.42-3.63 (m, 3H), 7.14-7.56 (m, 4H); .sup.13C NMR (125 MHz): =25.5 (CH.sub.2), 28.3 (CH.sub.2), 43.4 (CH.sub.2), 51.3 (CH.sub.2), 52.2 (CH), 124.4 (CH), 124.9 (CH), 127.6 (2CH), 136.8 (C), 141.3 (C), 217.5 (C) ppm; HRMS (ESI+): calcd. for C.sub.12H.sub.13ON.sub.3Na.sup.+ 238.0951. found 238.0952.

1-Phenyl-3,4-dihydronaphthalen-2(1H)-one (4p)

(119) ##STR00123##

(120) The general procedure C was followed using 4-phenyl-1,2-dihydronaphthalene (1p) (100 mg, 0.49 mmol) as a substrate procured 4p (70 mg, 65%) as a colorless solid, melting point 163-166 C.; R.sub.f 0.3 (15% ethyl acetate/pet. ether); H.sup.1 NMR (200 MHz): 2.60-2.68 (m, 1H), 2.73-2.90 (m, 1H), 3.10-3.33 (m, 2H), 4.81 (s, 1H), 7.04-7.49 (m, 9H) ppm.

1-(p-Tolyl)-3,4-dihydronaphthalen-2(1H)-one (4r)

(121) ##STR00124##

(122) The general procedure C was followed using 4-(p-tolyl)-1,2-dihydronaphthalene (1r) (100 mg, 0.45 mmol) as a substrate procured 4r (65 mg, 61%) as a colorless liquid; R.sub.f 0.3 (15% ethyl acetate/pet. ether); H.sup.1 NMR (500 MHz): =2.31 (s, 3H), 2.53-2.61 (m, 1H), 2.67-2.75 (m, 1H), 2.98-3.05 (m, 1H), 3.08-3.15 (m, 1H), 4.71 (s, 1H), 6.98 (d, J=8.1 Hz, 2H), 7.01 (d, J=7.6 Hz, 1H), 7.12 (d, J=7.6 Hz, 2H), 7.18-7.24 (m, 1H), 7.27 (d, J=4.4 Hz, 2H); .sup.13C NMR (125 MHz): =21.0 (CH.sub.3), 28.2 (CH.sub.2), 37.0 (CH.sub.2), 59.5 (CH), 127.2 (CH), 127.3 (CH), 127.4 (CH), 127.9 (2CH), 129.4 (CH), 129.5 (CH), 129.6 (CH), 134.5 (C), 136.7 (C), 137.0 (2C), 209.9 (C) ppm; HRMS (ESI+): calcd. for C.sub.17H.sub.16ONa.sup.+ 259.1093. found 259.1093.

6-Methoxy-1-phenyl-3,4-dihydronaphthalen-2(1H)-one (4s)

(123) ##STR00125##

(124) The general procedure C was followed using 7-methoxy-4-phenyl-1,2-dihydronaphthalene (4s) (100 mg, 0.42 mmol) as a substrate procured 4s (77 mg, 72%) as a colorless liquid; R.sub.f 0.3 (15% ethyl acetate/pet. ether); H.sup.1 NMR (500 MHz): =2.56-2.62 (m, 1H), 2.71-2.77 (m, 1H), 2.98-3.04 (m, 1H), 3.09-3.15 (m, 1H), 3.85 (s, 3H), 4.73 (s, 1H), 6.80-6.84 (m, 2H), 6.96 (d, J=8.6 Hz, 1H), 7.12 (d, J=7.1 Hz, 2H), 7.28 (t, J=6.6 Hz, 1H), 7.33 (t, J=7.1 Hz, 2H); .sup.13C NMR (125 MHz): =28.4 (CH.sub.2), 36.7 (CH.sub.2), 55.3 (CH.sub.3), 59.0 (CH), 112.8 (CH), 113.1 (CH), 127.1 (CH), 128.4 (C), 128.5 (2CH), 128.6 (2CH), 130.6 (CH), 137.9 (C), 138.2 (C), 158.8 (C), 209.8 (C) ppm; HRMS (ESI+): calcd. for C.sub.17H.sub.16O.sub.2Na.sup.+ 275.1043. found 275.1040.

6-Methoxy-1-(p-tolyl)-3,4-dihydronaphthalen-2(1H)-one (4t)

(125) ##STR00126##

(126) The general procedure C was followed using 7-methoxy-4-phenyl-1,2-dihydronaphthalene (1t) (100 mg, 0.40 mmol) as a substrate procured 4t (73 mg, 69%) as a colorless liquid; R.sub.f 0.3 (15% ethyl acetate/pet. ether); H.sup.1 NMR (500 MHz) : 2.31 (s, 3H), 2.51-2.57 (m, 1H), 2.66-2.72 (m, 1H), 2.94-3.00 (m, 1H), 3.04-3.10 (m, 1H), 3.82 (s, 3H), 4.66 (s, 1H), 6.79 (dd, J=2.5, 8.4 Hz, 1H), 6.82 (d, J=2.52 Hz, 1H), 6.93 (d, J=8.16 Hz, 1H), 6.98 (d, J=7.94 Hz, 2H), 7.11 (d, J=8.14 Hz, 2H); .sup.13C NMR (125 MHz) : 21.0 (CH.sub.3), 28.4 (CH.sub.2), 36.8 (CH.sub.2), 55.3 (CH.sub.3), 58.7 (CH), 112.8 (CH), 113.1 (CH), 128.4 (2CH), 128.6 (C), 129.4 (2CH), 130.6 (CH), 134.9 (C), 136.8 (C), 138.1 (C), 158.7 (C), 209.9 (C) ppm; HRMS (ESI+): calcd. for C.sub.18H.sub.18O.sub.2Na.sup.+ 289.1199. found 289.1199.

1-Allyl-1,3-dihydro-2H-inden-2-one (4u).SUP.8

(127) ##STR00127##

(128) The general procedure C was followed using 3-allyl-1H-indene (1u) (100 mg, 0.64 mmol) as a substrate procured 4s (76 mg, 69%) as a colorless liquid; R.sub.f 0.3 (15% ethyl acetate/pet. ether); NMR (200 MHz): =2.51-2.78 (m, 2H), 3.49-3.57 (m, 3H), 4.98-5.11 (m, 2H), 5.61-5.82 (m, 1H), 7.26-7.35 (m, 4H); .sup.13C NMR (50 MHz): =35.7 (CH.sub.2), 43.4 (CH.sub.2), 52.6 (CH), 117.8 (CH.sub.2), 124.8 (2CH), 127.4 (CH), 127.5 (CH), 134.4 (CH), 136.8 (C), 141.5 (C), 217.1 (C) ppm.

Advantages of the Invention

(129) i. One step process at ambient temperature and pressure. ii. Library of compounds generated by the process. iii. Utility of the substituted compounds of library for anti-HIV, anti-cancer and anti-malarial. iv. One of the substituted compounds has utility as ligand for many other industrial applications.