Method for Fluoroalkylation of Enamines

20220204464 · 2022-06-30

    Inventors

    Cpc classification

    International classification

    Abstract

    The invention discloses a method for fluoroalkylation of enamines with a fluoro alkyl halide in the presence of a base.

    Claims

    1. A method for a fluoroalkylation of an enamine ENAM by a reaction REAC2, wherein ENAM is reacted with a fluoro alkyl halide FAHALIDE in the presence of a base BAS; wherein FAHALIDE is a compound of formula (FAHALIDE);
    X2-R3-X1 (FAHALIDE) R3 is C.sub.1-20 alkylene, wherein in the alkylene chain at least one of the hydrogens is substituted by F; X1 is Cl, Br or I; X2 is C(O)—OC.sub.1-4 alkyl, F, Br or H; BAS is selected from the group consisting of Na.sub.3PO.sub.4, Na.sub.2HPO.sub.4, K.sub.3PO.sub.4, K.sub.2HPO.sub.4, Na.sub.2CO.sub.3, NaHCO.sub.3, K.sub.2CO.sub.3, KHCO.sub.3, Cs.sub.2CO.sub.3, CsHCO.sub.3, NaOH, KOH, NaOtBu, KOtBu, NEt.sub.3, and DBU; wherein the reaction REAC2 is performed in the absence of a metal catalyst, preferably in the absence of a Pd catalyst; wherein the fluoroalkylation of said enamine ENAM by a reaction REAC2 occurs at a carbon atom of said ENAM; and wherein ENAM is a compound of formula (ENAM): ##STR00311## wherein the N atom depicted with (i) is a tertiary, non-aromatic N atom; and the C atoms depicted with (ii) and (iii) are non-aromatic C atoms.

    2. The method according to claim 1, wherein BAS is selected from the group consisting of K.sub.3PO.sub.4, K.sub.2CO.sub.3, Cs.sub.2CO.sub.3, KOH, KOtBu, NEt.sub.3, and DBU.

    3. The method according to claim 1, wherein R3 is C.sub.1-15 alkylene, wherein in the alkylene chain at least one of the hydrogens is substituted by F.

    4. The method according to claim 1, wherein X1 is Br or I.

    5. The method according to claim 1, wherein X2 is C(O)—OC.sub.1-4 alkyl, F or Br.

    6. The method according to claim 1, wherein the alkylene, that is represented by R3, wherein in the alkylene chain at least one of the hydrogens is substituted by F, is a perfluoroalkylene.

    7-11. (canceled)

    12. The method according to claim 1, wherein ENAM is a compound of formula (ENAM-I); ##STR00312## wherein the N atom depicted with (i) is a tertiary, non-aromatic N atom; the C atoms depicted with (ii) and (iii) are non-aromatic C atoms; R20 and R21 are identical or different and selected from the group consisting of H, C.sub.1-10 alkyl, C(O)—C.sub.1-4 alkyl, COOH, C(O)—O—C.sub.1-4 alkyl; or R20 and R21 form together with the 3 C atoms in —C.sup.(iii)H=C.sup.(ii)(N.sup.(i)(R10)R11-CH.sub.2—, which connect R20 and R21 and with (i), (ii) and (iii) as defined herein, a 5, 6 or 7 membered carbocyclic or heterocyclic, non-aromatic ring RINGA; the 5 membered RINGA being a ring RINGA-V as depicted in formula (RINGA-V), the 6 membered RINGA being a ring RINGA-VI as depicted in formula (RINGA-VI), and the 7 membered RINGA being a ring RINGA-VII as depicted in formula (RINGA-VII); ##STR00313## wherein each of the two endocyclic C atoms depicted with (1) and (2) in case of RINGA-V, each of the three endocyclic C atoms depicted with (1), (2) and (3) in case of RINGA-VI, and each of the four endocyclic C atoms depicted with (1), (2), (3) and (4) in case of RINGA-VII may be exchanged for a heteroatom O, N or S, said N may be unsubstituted or substituted by a substituent selected from the group consisting of C.sub.1-10 alkyl, C(O)—C.sub.1-4 alkyl, and phenyl; any of the bonds connecting the endocyclic atoms depicted with (1), (2), (3) or (4) in RINGA-V, RINGA-VI and RINGA-VII respectively may be a single or a double bond; any of the endocyclic C atoms depicted with (1), (2), (3) or (4) in RINGA-V, RINGA-VI and RINGA-VII respectively may be unsubstituted or substituted by one or two identical or different substituents selected from the group consisting of C.sub.1-10 alkyl, C(O)—C.sub.1-4 alkyl, COOH, C(O)—O—C.sub.1-4 alkyl, CN, phenyl, N(R12)R13, and oxo, or may be a carbonyl protected with ethylene glycol; the two endocyclic C atoms depicted with (1) and (4) in RINGA-VII may be connected by —CH.sub.2— or by —N(R30)-; R30 may be C.sub.1-4 alkyl, phenyl or benzyl; R12 and R13 are identical or different and selected from the group consisting of H, C.sub.1-10 alkyl, phenyl, and C(O)—C.sub.1-4 alkyl; or R20 and R21 together with the 3 C atoms in the —C.sup.(iii)H═C.sup.(ii)N.sup.(i)(R10)R11)-CH.sub.2— of formula (ENAM-I), which connect R20 and R21 and with (i), (ii) and (iii) as defined herein, are part of a steroid ring system; R10 and R11 are identical or different and selected from the group consisting of C.sub.1-10 alkyl and phenyl; or R10 and R11 form together with the N atom, which connects R10 and R11, a 5, 6 or 7 membered heterocyclic, non-aromatic ring RINGB; the 5 membered RINGB being a ring RINGB-V as depicted in formula (RINGB-V), the 6 membered RINGB being a ring RINGB-VI as depicted in formula (RINGB-VI), and the 7 membered RINGB being a ring RINGB-VII as depicted in formula (RINGB-VII); ##STR00314## wherein each of the two endocyclic C atoms depicted with (1) and (2) in case of RINGB-V, each of the three endocyclic C atoms depicted with (1), (2) and (3) in case of RINGB-VI, and each of the four endocyclic C atoms depicted with (1), (2), (3) and (4) in case of RINGB-VII may be exchanged for a heteroatom O, N or S said N may be unsubstituted or substituted by a substituent selected from the group consisting of C.sub.1-10 alkyl, C(O)—C.sub.1-4 alkyl, and phenyl; any of the bonds connecting the endocyclic atoms depicted with (1), (2), (3) or (4) in RINGB-V, RINGB-VI and RINGB-VII respectively may be a single or a double bond; any of the endocyclic C atoms depicted with (1), (2), (3) or (4) in RINGB-V, RINGB-VI and RINGB-VII respectively may be unsubstituted or substituted by one or two identical or different substituents selected from the group consisting of C.sub.1-10 alkyl, C(O)—C.sub.1-4 alkyl, COOH, C(O)—O—C.sub.1-4 alkyl, CN, phenyl, N(R14)R15, and oxo, or may be a carbonyl protected with ethylene glycol; R14 and R15 are identical or different and selected from the group consisting of H, C.sub.1-10 alkyl, phenyl, and C(O)—C.sub.1-4 alkyl.

    13. The method according to claim 12, wherein when R20 and R21 together with the 3 C atoms in the —C.sup.(iii)H=C.sup.(i)(N.sup.(i)(R10)R11)-CH.sub.2— of formula (ENAM-I), which connect R20 and R21, are part of a steroid ring system, the steroid ring system has gonane as steroid nucleus with a carbonyl (oxo substituent) at C-3.

    14. The method according to claim 1, wherein ENAM is prepared with a reaction REAC1 of a secondary amine SEKAM with a ketone KET.

    15. The method according to claim 14, wherein SEKAM is a compound of formula (SEKAM); ##STR00315## wherein the N atom depicted with (i) is a secondary, non-aromatic N atom.

    16. The method according to claim 14, wherein SEKAM is a compound of formula (SEKAM-I); ##STR00316## wherein the N atom depicted with (i) is a secondary, non-aromatic N atom; R10 and R11 are identical or different and selected from the group consisting of C.sub.1-10 alkyl and phenyl; or R10 and R11 form together with the N atom, which connects R10 and R11, a 5, 6, or 7 membered heterocyclic non-aromatic ring RINGB; a 5 membered RINGB being a ring RINGB-V as depicted in formula (RINGB-V), a 6 membered RINGB being a ring RINGB-VI as depicted in formula (RINGB-VI), and a 7 membered RINGB being a ring RINGB-VII as depicted in formula (RINGB-VII), ##STR00317## wherein each of the two endocyclic C atoms depicted with (1) and (2) in case of RINGB-V, each of the three endocyclic C atoms depicted with (1), (2) and (3) in case of RINGB-VI, and each of the four endocyclic C atoms depicted with (1), (2), (3) and (4) in case of RINGB-VII may be exchanged for a heteroatom O, N or S said N may be unsubstituted or substituted by a substituted selected from the group consisting of C.sub.1-10 alkyl, C(O)—C.sub.1-4 alkyl, and phenyl, any of the bonds connecting the endocyclic atoms depicted with (1), (2), (3) or (4) in RINGB-V, RING-VI and RINGB-VII respectively may be a single or a double bond; any of the endocyclic C atoms depicted with (1), (2), (3) or (4) in RINGB-V, RINGB-VI and RINGB-VII respectively may be unsubstituted or substituted by one or two identical or different substitutents selected from the group consisting of C.sub.1-10 alkyl, C(O)—C.sub.1-4 alkyl, COOH, C(O)—O—C.sub.1-4 alkyl, CN, phenyl, N(R14)R15, and oxo, or may be a carbonyl protected with ethylene glycol.

    17. The method according to claim 14, wherein KET is a compound of formula (KET); ##STR00318## wherein the C atoms depicted with (ii) and (iii) are non-aromatic C atoms.

    18. The method according to claim 14, wherein KET is a compound of formula (KET-I); ##STR00319## wherein the C atoms depicted with (ii) and (iii) are non-aromatic C atoms; R20 and R21 are identical or different and selected from the group consisting of H, C.sub.1-10 alkyl, C(O)—C.sub.1-4 alkyl, COOH, C(O)—O—C.sub.1-4 alkyl; or R20 and R21 form together with 3 C atoms in —C.sup.(iii)H═C.sup.(ii)(N.sup.(i)(R10)R11)-CH.sub.2—, which connect R20 and R21 and with (i), (ii) and (iii) as defined herein, a 5, 6, 7 membered carbocyclic or heterocyclic, non-aromatic ring RINGA, the 5 membered RINGA being a ring RINGA-V as depicted in formula (RING-V), the 6 membered RINGA being a ring RINGA-VI as depicted in formula (RING-VI), and the 7 membered RINGA being a ring RINGA-VII as depicted in formula (RING-VII), ##STR00320## wherein each of the two endocyclic C atoms depicted with (1) and (2) in case of RINGA-V, each of the three endocyclic C atoms depicted with (1), (2), and (3) in case of RINGA-VI, and each of the four endocyclic C atoms depicted with (1), (2), (3) and (4) in case of RINGA-VII may be exchanged for a heteroatom O, N, S, said N may be unsubstituted or substituted by a substituted selected from the group consisting of C.sub.1-10 alkyl, C(O)—C.sub.1-4 alkyl, and phenyl; any of the bonds connecting the endocyclic atoms depicted with (1), (2), (3) or (4) in RINGA-V, RINGA-VI and RINGA-VII respectively may be a single or a double bond; any of the endocyclic C atoms depicted with (1), (2), (3) or (4) in RINGA-V, RINGA-VI and RINGA-VII respectively may be unsubstituted or substituted by one or two identical or different substituents selected from the group consisting of C.sub.1-10 alkyl, C(O)—C.sub.1-4 alkyl, COOH, C(O)—O—C.sub.1-4 alkyl, CN, phenyl, N(R12)R13, and oxo, or may be a carbonyl protected with ethylene glycol; the two endocyclic C atoms depicted with (1) and (4) in RINGA-VII may be connected by —CH.sub.2— or by —N(R30)-; R30 may be C.sub.1-4 alkyl, phenyl or benzyl; R12 and R13 are identical or different and selected from the group consisting of H, C.sub.1-10 alkyl, phenyl, and C(O)—C.sub.1-4 alkyl; or R20 and R21 together with the 3 C atoms in the —C.sup.(iii)H═C.sup.(ii)(N.sup.(i)(R10)R11)-CH.sub.2— of formula (ENAM-I), which connect R20 and R21 and with (i), (ii) and (iii) as defined herein, are part of a steroid ring system.

    19. The method according to claim 14, wherein REAC1 and REAC2 are done without intermediate isolation of ENAM.

    20. The method according to claim 1, wherein after REAC2, the fluoralkylated ENAM is hydrolyzed with water in a reaction REAC3 to provide a secondary amine SEKAM and a flouralkylated ketone KET.

    21. The method according to claim 20, wherein REAC3 is done under acidic conditions.

    22. The method according to claim 20, wherein REAC2 and REAC3 are done without intermediate isolation of the fluoroalkylated ENAM after REAC2.

    23. The method according to claim 20, wherein REAC1, REAC2 and REAC3 are done without intermediate isolation of ENAM or of the fluoroalkylated ENAM.

    Description

    DETAILED DESCRIPTION OF THE INVENTION

    [0018] Preferably, the reaction REAC2 is performed in the absence of a metal catalyst, in particular a Pd catalyst. [0019] Preferably, said fluoroalkylation of said enamine ENAM by a reaction REAC2 occurs at a carbon atom of said ENAM (C-fluoroalkylation). [0020] Preferably, BAS is selected from the group consisting of K.sub.3PO.sub.4, K.sub.2CO.sub.3, Cs.sub.2CO.sub.3, KOH, KOtBu, NEt.sub.3, and DBU. [0021] Preferably, R3 is C.sub.1-15 alkylene, wherein in the alkylene chain at least one of the hydrogens is substituted by F; [0022] more preferably, R3 is C.sub.1-10 alkylene, wherein in the alkylene chain at least one of the hydrogens is substituted by F.

    [0023] Preferably, [0024] X1 is Br or I;
    more preferably, [0025] X1 is I.

    [0026] Preferably, [0027] X2 is C(O)—OC.sub.1-4 alkyl, F or Br.

    [0028] Preferably, [0029] X1 is Br or I; and [0030] X2 is C(O)—OC.sub.1-4 alkyl, F or Br;
    more preferably, [0031] X1 is I; and [0032] X2 is C(O)—OC.sub.1-4 alkyl, F or Br. [0033] Especially, FAHALIDE is selected from the group consisting of C.sub.1-20 alkyl-X1, Br—(CF.sub.2).sub.n3—Br, EtO—C(O)—CF.sub.2—X1, F.sub.3C—CH.sub.2—X1, and F.sub.3C—C(Cl)H—X1; [0034] more especially, FAHALIDE is selected from the group consisting of C.sub.1-15 alkyl-X1, Br—(CF.sub.2).sub.n3—Br, EtO—C(O)—CF.sub.2—X1, F.sub.3C—CH.sub.2—X1, and F.sub.3C—C(Cl)H—X1; [0035] even more especially, FAHALIDE is selected from the group consisting of C.sub.1-10 alkyl-X1, Br—(CF.sub.2).sub.n3—Br, EtO—C(O)—CF.sub.2—X1, F.sub.3C—CH.sub.2—X1, and F.sub.3C—C(Cl)H—X1; with n3 being an integer of 2 to 10;
    preferably, n3 is 2, 3, 4, 5, 6;
    more preferably, n3 is 2, 4 or 6;
    even more preferably, n3 is 4;
    wherein in the alkyl at least one of the C atoms is substituted by F. [0036] In particular, FAHALIDE is selected from the group consisting of F.sub.21C.sub.10—I, F.sub.21C.sub.10—Br, F.sub.19C.sub.9—I, F.sub.19C.sub.9—Br, F.sub.17C.sub.8—I, F.sub.17C.sub.8—Br, F.sub.13C.sub.6—I, F.sub.13C.sub.6—Br, F.sub.9C.sub.4—I, F.sub.9C.sub.4—Br, F.sub.7C.sub.3—I, F.sub.7C.sub.3—Br, F.sub.3C—I, F.sub.3C—Br, Br—(CF.sub.2).sub.6—Br, Br—(CF.sub.2).sub.4—Br, Br—(CF.sub.2).sub.2—Br, EtO—C(O)—CF.sub.2—I, EtO—C(O)—CF.sub.2—Br, F.sub.3C—CH.sub.2—C.sub.1, F.sub.3C—C(Cl)H—I and F.sub.3C—C(Cl)H—Br; [0037] more in particular, FAHALIDE is selected from the group consisting of F.sub.21C.sub.10—I, F.sub.19C.sub.9—I, F.sub.17C.sub.8—I, F.sub.13C.sub.6—I, F.sub.9C.sub.4—I, F.sub.7C.sub.3—I, F.sub.19C.sub.9—Br, F.sub.17C.sub.8—Br, F.sub.7C.sub.3—Br, F.sub.3C—Br, Br—(CF.sub.2).sub.4—Br, EtO—C(O)—CF.sub.2—Br, F.sub.3C—CH.sub.2—C.sub.1, and F.sub.3C—C(Cl)H—Br.

    [0038] In one embodiment, said alkylene, that is represented by R3, wherein in the alkylene chain at least one of the hydrogens is substituted by F, is a perfluoroalkylene.

    [0039] In one embodiment, said alkyl in the definition of FAHALIDE, wherein in said alkyl at least one of the C atoms is substituted by F, is a perfluoroalkyl.

    [0040] The term “alkylene” as it is used in instant invention for the definition of R3, with R3 being an alkylene, wherein in the alkylene at least one of the hydrogens is substituted by F, means an alkyl residue which is substituted by X1 and by X2; so FAHALIDE is an alkane substituted by X1 and by X2, wherein at least one of the hydrogens of the alkane is substituted by F.

    [0041] ENAM may be any enamine formed by a reaction of a secondary amine with a ketone. In the context of the present invention, the definition of “enamine” preferably excludes 2-aminothiazoles, more preferably it excludes thiazoles, even more preferably it excludes the situation where the enamine group is part of an aromatic system, and most preferably it excludes α,β-unsaturated imines (whether part of an aromatic system or otherwise).

    [0042] Preferably, the fluoroalkylation of said enamine ENAM by a reaction REAC2 occurs at a carbon atom of said ENAM (C-fluoroalkylation). More preferably, the carbon atom at which the C-fluoroalkylation occurs is a carbon atom directly adjacent to the carbonyl group of the ketone (α-carbon) which was reacted with a secondary amine to obtain the enamine ENAM.

    [0043] ENAM may be a compound of formula (ENAM);

    ##STR00001##

    wherein
    the N atom depicted with (i) is a tertiary, non-aromatic N atom;
    the C atoms depicted with (ii) and (iii) are non-aromatic C atoms.
    ENAM may be a compound of formula (ENAM-I);

    ##STR00002##

    wherein
    the N atom depicted with (i) is a tertiary, non-aromatic N atom;
    the C atoms depicted with (ii) and (iii) are non-aromatic C atoms;
    R20 and R21 are identical or different and selected from the group consisting of H, C.sub.1-10 alkyl, C(O)—C.sub.1-4 alkyl, COOH, C(O)—O—C.sub.1-4 alkyl;
    or
    R20 and R21 form together with the 3 C atoms in —C.sup.(ii)H=C.sup.(i)(N.sup.(iii)(R10)R11)-CH.sub.2—, which connect R20 and R21 and with (i), (ii) and (iii) as defined herein, a 5, 6 or 7 membered carbocyclic or heterocyclic, non-aromatic ring RINGA;
    the 5 membered RINGA being a ring RINGA-V as depicted in formula (RINGA-V),
    the 6 membered RINGA being a ring RINGA-VI as depicted in formula (RINGA-VI), and
    the 7 membered RINGA being a ring RINGA-VII as depicted in formula (RINGA-VII);

    ##STR00003##

    wherein
    each of the two endocyclic C atoms depicted with (1) and (2) in case of RINGA-V,
    each of the three endocyclic C atoms depicted with (1), (2) and (3) in case of RINGA-VI, and
    each of the four endocyclic C atoms depicted with (1), (2), (3) and (4) in case of RINGA-VII [0044] may be exchanged for a heteroatom O, N or S, said N may be unsubstituted or substituted by a substituent selected from the group consisting of C.sub.1-10 alkyl, C(O)—C.sub.1-4 alkyl, and phenyl; [0045] any of the bonds connecting the endocyclic atoms depicted with (1), (2), (3) or (4) in RINGA-V, RINGA-VI and RINGA-VII respectively may be a single or a double bond; any of the endocyclic C atoms depicted with (1), (2), (3) or (4) in RINGA-V, RINGA-VI and RINGA-VII respectively may be unsubstituted or substituted by one or two identical or different substituents selected from the group consisting of C.sub.1-10 alkyl, C(O)—C.sub.1-4 alkyl, COOH, C(O)—O—C.sub.1-4 alkyl, CN, phenyl, N(R12)R13, and oxo, or may be a carbonyl protected with ethylene glycol; [0046] the two endocyclic C atoms depicted with (1) and (4) in RINGA-VII may be connected by —CH.sub.2— or by —N(R30)-; [0047] R30 may be C.sub.1-4 alkyl, phenyl or benzyl; [0048] R12 and R13 are identical or different and selected from the group consisting of H, C.sub.1-10 alkyl, phenyl, and C(O)—C.sub.1-4 alkyl;
    or [0049] R20 and R21 together with the 3 C atoms in the —C.sup.(ii)H=C.sup.(i)(N.sup.(iii)(R10)R11)-CH.sub.2— of formula (ENAM-I), which connect R20 and R21 and with (i), (ii) and (iii) as defined herein, are part of a steroid ring system; [0050] R10 and R11 are identical or different and selected from the group consisting of C.sub.1-10 alkyl and phenyl;
    or
    R10 and R11 form together with the N atom, which connects R10 and R11, a 5, 6 or 7 membered heterocyclic, non-aromatic ring RINGB;
    the 5 membered RINGB being a ring RINGB-V as depicted in formula (RINGB-V),
    the 6 membered RINGB being a ring RINGB-VI as depicted in formula (RINGB-VI), and
    the 7 membered RINGB being a ring RINGB-VII as depicted in formula (RINGB-VII);

    ##STR00004##

    wherein
    each of the two endocyclic C atoms depicted with (1) and (2) in case of RINGB-V,
    each of the three endocyclic C atoms depicted with (1), (2) and (3) in case of RINGB-VI, and
    each of the four endocyclic C atoms depicted with (1), (2), (3) and (4) in case of RINGB-VII [0051] may be exchanged for a heteroatom O, N or S said N may be unsubstituted or substituted by a substituent selected from the group consisting of C.sub.1-10 alkyl, C(O)—C.sub.1-4 alkyl, and phenyl; [0052] any of the bonds connecting the endocyclic atoms depicted with (1), (2), (3) or (4) in RINGB-V, RINGB-VI and RINGB-VII respectively may be a single or a double bond; [0053] any of the endocyclic C atoms depicted with (1), (2), (3) or (4) in RINGB-V, RINGB-VI and RINGB-VII respectively may be unsubstituted or substituted by one or two identical or different substituents selected from the group consisting of C.sub.1-10 alkyl, C(O)—C.sub.1-4 alkyl, COOH, C(O)—O—C.sub.1-4 alkyl, CN, phenyl, N(R14)R15, and oxo, or may be a carbonyl protected with ethylene glycol; [0054] R14 and R15 are identical or different and selected from the group consisting of H, C.sub.1-10 alkyl, phenyl, and C(O)—C.sub.1-4 alkyl.

    [0055] The N atom depicted with (i) in ENAM-I is the same N atom as depicted with (i) in ENAM, and

    the C atoms depicted with (ii) and (iii) in ENAM-I are the same C atoms as depicted with (ii) and (iii) in ENAM.

    [0056] When R20 and R21 together with the 3 C atoms in the —C.sup.(ii)H=C.sup.(i)(N.sup.(iii)(R10)R11)-CH.sub.2— of formula (ENAM-I), which connect R20 and R21 and with (i), (ii) and (iii) as defined herein, are part of a steroid ring system, said steroid ring system may have gonane as steroid nucleus with a carbonyl (oxo substituent) at C-3. Ring A in the steroid ring system with gonane as steroid nucleus and with a carbonyl (oxo substituent) at C-3 may be saturated.

    [0057] ENAM-I is formed by a reaction of a secondary amine with this carbonyl at C-3.

    [0058] The steroid ring system with a carbonyl (oxo substituent) at C-3 may be cholesterone, dihydrocholesterone, dihydrotestosterone, dihydroprogesterone, dihydrocortisol, dihydrocortisone, dihydronorethisterone, dihydroaldosterone, dihydrocorticosterone, dihydroandrostenedione and the like.

    [0059] Preferably, R20 and R21 are identical or different and selected from the group consisting of H, C.sub.1-4 alkyl, C(O)—C.sub.1-2 alkyl, COOH, C(O)—O—C.sub.1-2 alkyl;

    or [0060] one of the two endocyclic C atoms depicted with (1) and (2) in case of RINGA-V, [0061] one or two of the three endocyclic C atoms depicted with (1), (2) and (3) in case of RINGA-VI, and [0062] one or two of the four endocyclic C atoms depicted with (1), (2), (3) and (4) in case of RINGA-VII [0063] may be exchanged for a heteroatom O, N or S said N may be unsubstituted or substituted by a substituent selected from the group consisting of C.sub.1-4 alkyl, C(O)—C.sub.1-2 alkyl, and phenyl; [0064] one or two the endocyclic C atoms depicted with (1), (2), (3) or (4) in RINGA-V, RINGA-VI and RINGA-VII respectively may be unsubstituted or substituted by one or two identical or different substituents selected from the group consisting of C.sub.1-4 alkyl, C(O)—C.sub.1-2 alkyl, C(O)—O—C.sub.1-2 alkyl, CN, phenyl, N(R12)R13, and oxo, or may be a carbonyl protected with ethylene glycol; [0065] the two endocyclic C atoms depicted with (1) and (4) in RINGA-VII may be connected by —N(R30)-; [0066] R30 may be C.sub.1-2 alkyl, phenyl or benzyl; [0067] R12 and R13 are identical or different and selected from the group consisting of H, C.sub.1-4 alkyl, phenyl, and C(O)—C.sub.1-2 alkyl;
    or [0068] R20 and R21 together with the 3 C atoms in the —C.sup.(ii)H=C.sup.(i)(N.sup.(iii)(R10)R11)-CH.sub.2— of formula (ENAM-I), which connect R20 and R21 and with (i), (ii) and (iii) as defined herein, are part of a steroid ring system. [0069] Preferably, R10 and R11 are identical or different and selected from the group consisting of C.sub.1-4 alkyl and phenyl;
    or
    R10 and R11 form together with the N atom, which connects R10 and R11, RINGB-V or RINGB-VI;
    wherein
    one of the two endocyclic C atoms depicted with (1) and (2) in case of RINGB-V, and [0070] one or two of the three endocyclic C atoms depicted with (1), (2) and (3) in case of RINGB-VI [0071] may be exchanged for a heteroatom O, N or S said N may be unsubstituted or substituted by a substituent selected from the group consisting of C.sub.1-4 alkyl, C(O)—C.sub.1-2 alkyl, and phenyl; [0072] one or two of the endocyclic C atoms depicted with (1), (2) or (3) in RINGB-V and RINGB-VI respectively may be unsubstituted or substituted by one or two identical or different substituents selected from the group consisting of C.sub.1-4 alkyl, C(O)—C.sub.1-2 alkyl, C(O)—O—C.sub.1-2 alkyl, CN, phenyl, N(R14)R15, and oxo, or may be a carbonyl protected with ethylene glycol; [0073] R14 and R15 are identical or different and selected from the group consisting of H, C.sub.1-4 alkyl, phenyl, and C(O)—C.sub.1-2 alkyl. [0074] More preferably, R10 and R11 are identical or different and selected from the group consisting of C.sub.1-4 alkyl and phenyl;
    or
    R10 and R11 form together with the N atom, which connects R10 and R11, RINGB-V or RINGB-VI;
    wherein
    one of the two endocyclic C atoms depicted with (1) and (2) in case of RINGB-V, and
    one of the three endocyclic C atoms depicted with (1), (2) and (3) in case of RINGB-VI
    may be exchanged for a heteroatom O; [0075] one or two of the endocyclic C atoms depicted with (1), (2) or (3) in RINGB-V and RINGB-VI respectively may be unsubstituted or substituted by one or two identical or different substituents selected from the group consisting of C.sub.1-4 alkyl, N(R14)R15, and oxo, or may be a carbonyl protected with ethylene glycol; [0076] R14 and R15 are identical or different and selected from the group consisting of H, C.sub.1-4 alkyl, phenyl, and C(O)—C.sub.1-2 alkyl. [0077] Even more preferably, R10 and R11 are identical or different and selected from the group consisting of C.sub.1-4 alkyl and phenyl;
    or
    R10 and R11 form together with the N atom, which connects R10 and R11, RINGB-V or RINGB-VI;
    wherein
    the endocyclic C atom depicted with (2) in case of RINGB-VI may be exchanged for a heteroatom O.

    [0078] Embodiments of ENAM are

    ##STR00005## ##STR00006##

    [0079] The reaction product of REAC2 is a fluoroalkylated ENAM.

    [0080] The molar amount of FAHALIDE in REAC2 may be from 0.01 to 10 fold, more preferably from 0.05 to 5 fold, even more preferably from 0.1 to 4 fold, especially from 0.1 to 3 fold, more especially from 0.2 to 2.1 fold, of the molar amount of ENAM.

    [0081] The molar amount of BAS in REAC2 may be from 0.1 to 10 fold, preferably from 0.2 to 5 fold, even more preferably from 0.3 to 4 fold, especially from 0.4 to 3.1 fold, of the molar amount of ENAM.

    [0082] REAC2 may be done in a solvent SOLV2, SOLV2 may be THF, Et.sub.2O, toluene, Heptane, acetonitrile, DCM or ethyl acetate;

    preferably, REAC2 may be done in a solvent SOLV2, SOLV2 may be THF, Et.sub.2O, toluene, Heptane, acetonitrile or DCM.

    [0083] The amount of SOLV2 in REAC2 may be from 2 to 100 fold, preferably from 3 to 50 fold, even more preferably from 3 to 25 fold, especially from 3 to 15 fold, of the weight of ENAM.

    [0084] The reaction temperature TEMP2 of REAC2 may be from −10 to 150° C., preferably, from −5 to 120° C., more preferably from 0 to 100° C., even more preferably from 10 to 90° C.

    [0085] The reaction time TIME2 of REAC2 may be from 1 to 100 h, preferably, from 2 to 100 h, more preferably from 5 to 100 h, even more preferably from 10 to 100 h.

    [0086] REAC2 may be done under ambient pressure or under elevated pressure; the pressure of REAC2 may result from or be determined by the combination of the chosen TEMP2 together with the vapor pressure of the reaction mixture.

    [0087] REAC2 may be done under inert atmosphere, the inert atmosphere may be provided by nitrogen or argon.

    [0088] REAC2 is preferably done in the absence of water or at least with a minimized amount of water present. In order to minimize the amount of water present in REAC2 various measures can be taken such as drying of any of the substances prior to REAC2, which are present in REAC2, such as substrate, FAHALIDE, BAS or any solvent; or [0089] REAC2 may be done in the presence of a an drying agent DRYAG; [0090] DRYAG may be selected from the group consisting of molecular sieve or hygroscopic salts such as CaCl.sub.2), MgSO.sub.4, or Na.sub.2SO.sub.4;
    preferably molecular sieve.

    [0091] Preferably, a molecular sieve has a pore size of from 2 to 6 angstrom.

    [0092] A molecular sieve may be a sodium aluminum silicate, such as Na.sub.12[(AlO.sub.2).sub.12(SiO.sub.2).sub.12] xH.sub.2O. [0093] Preferably, the amount of DRYAG used in the reaction is from 0.1 to 2 fold, more preferably from 0.1 to 1.5 fold, even more preferably from 0.1 to 1 fold, especially from 0.1 to 0.75 fold, more especially from 0.1 to 0.5 fold, based on the weight of substrate.

    [0094] ENAM may be prepared with a reaction REAC1 of a secondary amine SEKAM with a ketone KET.

    [0095] SEKAM may be any secondary amine which is capable for forming an enamine with a ketone.

    [0096] SEKAM may be a compound of formula (SEKAM);

    ##STR00007##

    wherein
    the N atom depicted with (i) is a secondary, non-aromatic N atom.

    [0097] SEKAM may be a compound of formula (SEKAM-I);

    ##STR00008##

    wherein
    the N atom depicted with (i) is a secondary, non-aromatic N atom;
    R10 and R11 are as defined herein, also with all their embodiments.

    [0098] Embodiments of SEKAM are pyrrolidine, morpholine, piperidine, hexamethyldisilazane, diisopropylamine and diethylamine;

    preferably, pyrrolidine and morpholine.

    [0099] KET may be any ketone which is capable for forming an enamine with a secondary amine.

    [0100] KET may be a compound of formula (KET);

    ##STR00009##

    wherein
    the C atoms depicted with (ii) and (iii) are non-aromatic C atoms.

    [0101] KET may be a compound of formula (KET-I);

    ##STR00010##

    wherein
    the C atoms depicted with (ii) and (iii) are non-aromatic C atoms;
    R20 and R21 are as defined herein, also with all their embodiments.

    [0102] Embodiments of KET are

    ##STR00011## ##STR00012## [0103] The N atom depicted with (i) in KET-I is the same N atom as depicted with (i) in KET and is the same N atom as depicted with (i) in ENAM and ENAM-I, and [0104] the C atoms depicted with (ii) and (iii) in KET-I are the same C atoms as depicted with (ii) and (iii) in KET and are the same C atoms as depicted with (ii) and (iii) in ENAM and ENAM-I.

    [0105] The molar amount of SEKAM in REAC1 may be from 1 to 10 fold, preferably from 1 to 5 fold, more preferably from 1 to 4 fold, even more preferably from 1 to 3 fold, especially from 1 to 2.3 fold, of the molar amount of KET.

    [0106] REAC1 may be done in a solvent SOLV1, SOLV1 may be THF, Et.sub.2O, toluene, Heptane, acetonitrile, DCM or ethyl acetate;

    preferably, REAC1 may be done in a solvent SOLV1, SOLV1 may be THF, Et.sub.2O, toluene, Heptane, acetonitrile or DCM.

    [0107] The amount of SOLV1 in REAC1 may be from 2 to 100 fold, preferably from 3 to 50 fold, even more preferably from 3 to 25 fold, especially from 3 to 15 fold, of the weight of KET.

    [0108] The reaction temperature TEMP1 of REAC1 may be from −10 to 150° C., preferably, from −5 to 120° C., more preferably from 0 to 100° C., even more preferably from 10 to 90° C.

    [0109] The reaction time TIME1 of REAC1 may be from 1 to 100 h, preferably, from 2 to 100 h, more preferably from 5 to 100 h, even more preferably from 10 to 100 h.

    [0110] REAC1 may be done under ambient pressure or under elevated pressure; the pressure of REAC1 may result from or be determined by the combination of the chosen TEMP1 together with the vapor pressure of the reaction mixture.

    [0111] REAC1 may be done under inert atmosphere, the inert atmosphere may be provided by nitrogen or argon.

    [0112] SOLV1 and SOLV2 may be the same.

    [0113] For TIME1 and TIME2 the same time may be chosen.

    [0114] For TEMP1 and TEMP2 the same temperature may be chosen.

    [0115] Preferably, REAC1 and REAC2 are done without intermediate isolation of ENAM.

    [0116] Preferably, REAC1 and REAC2 are done in the same reaction vessel. [0117] More preferably, REAC1 and REAC2 are done without intermediate isolation of ENAM and are done in the same reaction vessel. [0118] Even more preferably, REAC1 and REAC2 are done without intermediate isolation of ENAM, are done in the same reaction vessel, and KET, SEKAM, FAHALIDE and BAS are all initially mixed together and are thereby all present in the reactions REAC1 and REAC2, in this case TIME1 and TIME2 are identical and TEMP1 and TEMP2 are identical.

    [0119] After REAC2, the fluoralkylated ENAM may be hydrolyzed with water in a reaction REAC3 to provide SEKAM and a flouralkylated KET.

    REAC3 is preferably done under acidic conditions;
    said acidic condition may be provided for by the presence of an acid during REAC3; [0120] said acid may any acid known the skilled person which is capable of catalyzing cleavage of an enamine into the respective secondary amine and the ketone under aqueous conditions, such as HCl, H.sub.2SO.sub.4, H.sub.3PO.sub.4, trifluoro acetic acid, acetic acid;
    preferably HCl.

    [0121] Said acid may be used in form of an aqueous solution.

    [0122] The molar amount of water in REAC3 may be the same as or greater than the molar amount of ENAM.

    [0123] The molar amount of said acid in REAC3 may be a catalytic amount with respect to the molar amount of the fluoroalkylated ENAM, or may be the same as or greater than the molar amount of ENAM. For example, 1 N aqueous HCl may be used.

    [0124] REAC3 is done by mixing the fluoroalkylated ENAM with water and optionally with said acid. Said mixing is preferably done after REAC2.

    [0125] REAC3 may be done in a solvent SOLV3, SOLV3 may be THF, Et.sub.2O, toluene, Heptane, acetonitrile, DCM or ethyl acetate;

    preferably, REAC3 may be done in a solvent SOLV3, SOLV3 may be THF, Et.sub.2O, toluene, Heptane, acetonitrile or DCM.

    [0126] The amount of SOLV3 in REAC3 may be from 2 to 100 fold, preferably from 3 to 50 fold, even more preferably from 3 to 25 fold, especially from 3 to 15 fold, of the weight of fluoroalkylated ENAM.

    [0127] The reaction temperature TEMP3 of REAC3 may be from −10 to 150° C., preferably, from −5 to 120° C., more preferably from 0 to 100° C., even more preferably from 10 to 90° C.

    [0128] The reaction time TIME3 of REAC3 may be from 15 min to 24 h, preferably, from 30 min to 12 h, more preferably from 30 min to 6 h, even more preferably from 30 min to 3 h.

    [0129] REAC3 may be done under ambient pressure or under elevated pressure; the pressure of REAC3 may result from or be determined by the combination of the chosen TEMP3 together with the vapor pressure of the reaction mixture.

    [0130] REAC3 may be done under inert atmosphere, the inert atmosphere may be provided by nitrogen or argon.

    [0131] SOLV2 and SOLV3 may be the same.

    [0132] Preferably, REAC2 and REAC3 are done without intermediate isolation of the fluoroalkylated ENAM after REAC2.

    [0133] When REAC2 and REAC3 are done without intermediate isolation of the fluoroalkylated ENAM after REAC2, then the reaction mixture obtained after REAC2 may be mixed with water and optionally with said acid.

    [0134] Preferably, REAC2 and REAC3 are done in the same reaction vessel. [0135] More preferably, REAC2 and REAC3 are done without intermediate isolation of the fluoroalkylated ENAM after REAC2 and are done in the same reaction vessel.

    [0136] Preferably, REAC1, REAC2 and REAC3 are done without intermediate isolation of ENAM or of the fluoroalkylated ENAM.

    [0137] Preferably, REAC1, REAC2 and REAC3 are done in the same reaction vessel. [0138] More preferably, REAC1, REAC2 and REAC3 are done without intermediate isolation of ENAM or of the fluoroalkylated ENAM and are done in the same reaction vessel. [0139] Even more preferably, REAC1, REAC2 and REAC3 are done without intermediate isolation of ENAM or of the fluoroalkylated ENAM, are done in the same reaction vessel, and KET, SEKAM, FAHALIDE and BAS are all initially mixed together and are thereby all present in the reactions REAC1 and REAC2, in this case TIME1 and TIME2 are identical and TEMP1 and TEMP2 are identical.

    [0140] When REAC1 and REAC2 are done without intermediate isolation of ENAM, then DRYAG may be present in the reactions REAC1 and REAC2.

    [0141] ENAM after REAC1, the fluoroalkylated ENAM after REAC2 and the fluoroalkylated KET after REAC3 may be isolated according to procedures known to the skilled person.

    Examples

    Abbreviations and Definitions

    [0142] 4A MS 4 Angström Molecular sieve, CAS 70955-01-0, Na.sub.12[(AlO.sub.2).sub.12(SiO.sub.2).sub.12]×H.sub.2O, Sigma Aldrich ProdNo. 688363, amount used was 0.5 g of 4A MS per 0.5 mmol of the limiting reactant [0143] CF.sub.3Ph Benzotrifluoride, alpha, alpha, alpha-trifluorotoluene [0144] Conv Conversion in mol % with regard to the limiting substance in the reaction (either substrate or FAHALIDE, as the case may be) [0145] DBU 1,8-Diazabicyclo[5.4.0]undec-7-ene [0146] DCM dichloromethane [0147] 1,2-DFB 1,2-difluorobenzene [0148] 1,4-DFB 1,4-difluorobenzene [0149] Et.sub.2O Diethylether [0150] KOtBu Potassium tert. butoxide [0151] NEt.sub.3 Triethylamine [0152] THF Tetrahydrofuran [0153] Yield Yield with regard to the limiting substance in the reaction (either substrate or FAHALIDE, as the case may be)

    Materials

    Protocol 1—REAC2

    [0154] A mixture of the substrate, FAHALIDE, BAS and the solvent (all equivalents and amounts are specified in the respective tables) were placed in a thick-walled pressure tube (Ace pressure tube, Sigma-Aldrich Art. No Z564559). The gas atmosphere in the pressure tube was flushed with argon, the tube was closed with a screw cap and heated (reaction temperature and reaction time are specified in the respective table). The resulting mixture was cooled to room temperature. Solids were removed by centrifugation (3000 rpm, 15 min). The obtained product solution was analyzed by quantitative GC analysis (internal standard hexadecane), .sup.19F-NMR analysis using the internal standards 1,2-difluorobenzene, 1,4-difluorobenzene or benzotrifluoride, or GC-MS.

    Protocol 2—REAC1, REAC2 and REAC3

    [0155] A mixture of the substrate, FAHALIDE, SEKAM, BAS, DRYAG and the solvent (all equivalents and amounts are specified in the respective table) were placed in a thick-walled pressure tube (Ace pressure tube, Sigma-Aldrich Art. No Z56455964575). The gas atmosphere in the pressure tube was flushed with argon, the tube was closed with a screw cap and heated (reaction temperature and reaction time are specified in the respective tables). The resulting reaction mixture was mixed with 1 N aqueous hydrochloric acid (2 eq) for 1 hour at ambient temperature. The organic phase was then separated and the product was purified by pipette column chromatography using FluoroFlash® reverse phase silica gel (Sigma Aldrich No.: 00866) and a gradient solvent elution (1. MeOH:H.sub.2O (4:1, 10 mL) 2. MeOH (100%, 10 mL) 3. acetone (100%, 10 mL) for long chains fluoroalkyl chains (alkyl chain containing 10 or more carbon atoms) or by normal phase silical gel chromatography using silicagel (Sigma Aldrich No.: 236802) and a gradient solvent elution (1. Pentane Ether (100%) 2. Pentane: Diethylether (50%: 50%, 10 ml) for fluoroalkyl chains containing less than 10 carbon atoms.

    [0156] The obtained product solution was analyzed by quantitative GC analysis (internal standard hexadecane), .sup.19F-NMR analysis using the internal standards 1,2-difluorobenzene, 1,4-difluorobenzene or benzotrifluoride, or GC-MS.

    Protocol 3—REAC1 and REAC2

    [0157] A mixture of the substrate, FAHALIDE, SEKAM, BAS, DRYAG and solvent (all equivalents and amounts are specified in the respective tables) were placed in a thick-walled pressure tube (Ace pressure tube, Sigma-Aldrich Art. No. Z564559). The gas atmosphere in the pressure tube was flushed with argon, the tube was closed with a screw cap and heated (reaction temperature and reaction time are specified in the respective tables). The resulting mixture was cooled to room temperature. Solids were removed by centrifugation (3000 rpm, 15 min). The obtained product solution was analyzed by quantitative GC analysis (internal standard hexadecane), 19F-NMR analysis using the internal standards 1,2-difluorobenzene, 1,4-difluorobenzene or benzotrifluoride, or GC-MS.

    Protocol 4—REAC2 and REAC3

    [0158] A mixture of the substrate, FAHALIDE, BAS and solvent (all equivalents and amounts are specified in the respective tables) were placed in a thick-walled pressure tube (Ace pressure tube, Sigma-Aldrich Art. No. Z564559). The gas atmosphere in the pressure tube was flushed with argon, the tube was closed with a screw cap and heated (reaction temperature and reaction time are specified in the respective table). The resulting mixture was cooled to room temperature and mixed with 1 N aqueous hydrochloric acid for 1 hour. The organic phase was then separated and analyzed by quantitative GC analysis (internal standard hexadecane), .sup.19F-NMR analysis using the internal standards 1,2-difluorobenzene, 1,4-difluorobenzene or benzotrifluoride, or GC-MS.

    [0159] Details of the examples are given in Tables 1, 2 and 3.

    [0160] Examples 1 to 28 were done according to Protocol 1—REAC2.

    [0161] Examples 29 to 72 and 81 were done according to Protocol 2—REAC1, REAC2 and REAC3.

    [0162] Examples 77 to 80 were done according to Protocol 3—REAC1 and REAC2.

    [0163] Examples 73 to 76 were done according to Protocol 4—REAC2 and REAC3.

    TABLE-US-00001 TABLE 1 Ex Substrate FAHALIDE Product  1 [00013]embedded image [00014]embedded image [00015]embedded image  2 [00016]embedded image [00017]embedded image [00018]embedded image  3 [00019]embedded image [00020]embedded image [00021]embedded image  4 [00022]embedded image [00023]embedded image [00024]embedded image  5 [00025]embedded image [00026]embedded image [00027]embedded image  6 [00028]embedded image [00029]embedded image [00030]embedded image  7 [00031]embedded image [00032]embedded image [00033]embedded image  8 [00034]embedded image [00035]embedded image [00036]embedded image  9 [00037]embedded image [00038]embedded image [00039]embedded image 10 [00040]embedded image [00041]embedded image [00042]embedded image 11 [00043]embedded image [00044]embedded image [00045]embedded image 12 [00046]embedded image [00047]embedded image [00048]embedded image 13 [00049]embedded image [00050]embedded image [00051]embedded image 14 [00052]embedded image [00053]embedded image [00054]embedded image 15 [00055]embedded image [00056]embedded image [00057]embedded image 16 [00058]embedded image [00059]embedded image [00060]embedded image 17 [00061]embedded image [00062]embedded image [00063]embedded image 18 [00064]embedded image [00065]embedded image [00066]embedded image 19 [00067]embedded image [00068]embedded image [00069]embedded image 20 [00070]embedded image [00071]embedded image [00072]embedded image 21 [00073]embedded image [00074]embedded image [00075]embedded image 22 [00076]embedded image [00077]embedded image [00078]embedded image 23 [00079]embedded image [00080]embedded image [00081]embedded image 24 [00082]embedded image [00083]embedded image [00084]embedded image 25 [00085]embedded image [00086]embedded image [00087]embedded image 26 [00088]embedded image [00089]embedded image [00090]embedded image 27 [00091]embedded image [00092]embedded image [00093]embedded image 28 [00094]embedded image [00095]embedded image [00096]embedded image 29 [00097]embedded image [00098]embedded image [00099]embedded image 30 [00100]embedded image [00101]embedded image [00102]embedded image 31 [00103]embedded image [00104]embedded image [00105]embedded image 32 [00106]embedded image [00107]embedded image [00108]embedded image 33 [00109]embedded image [00110]embedded image [00111]embedded image 34 [00112]embedded image [00113]embedded image [00114]embedded image 35 [00115]embedded image [00116]embedded image [00117]embedded image 36 [00118]embedded image [00119]embedded image [00120]embedded image 37 [00121]embedded image [00122]embedded image [00123]embedded image 38 [00124]embedded image [00125]embedded image [00126]embedded image 39 [00127]embedded image [00128]embedded image [00129]embedded image 40 [00130]embedded image [00131]embedded image [00132]embedded image 41 [00133]embedded image [00134]embedded image [00135]embedded image 42 [00136]embedded image [00137]embedded image [00138]embedded image 43 [00139]embedded image [00140]embedded image [00141]embedded image 44 [00142]embedded image [00143]embedded image [00144]embedded image 45 [00145]embedded image [00146]embedded image [00147]embedded image 46 [00148]embedded image [00149]embedded image [00150]embedded image 47 [00151]embedded image [00152]embedded image [00153]embedded image 48 [00154]embedded image [00155]embedded image [00156]embedded image 49 [00157]embedded image [00158]embedded image [00159]embedded image 50 [00160]embedded image [00161]embedded image [00162]embedded image 51 [00163]embedded image [00164]embedded image [00165]embedded image 52 [00166]embedded image [00167]embedded image [00168]embedded image 53 [00169]embedded image [00170]embedded image [00171]embedded image 54 [00172]embedded image [00173]embedded image [00174]embedded image 55 [00175]embedded image [00176]embedded image [00177]embedded image 56 [00178]embedded image [00179]embedded image [00180]embedded image 57 [00181]embedded image [00182]embedded image [00183]embedded image 58 [00184]embedded image [00185]embedded image [00186]embedded image 59 [00187]embedded image [00188]embedded image [00189]embedded image 60 [00190]embedded image [00191]embedded image [00192]embedded image 61 [00193]embedded image [00194]embedded image [00195]embedded image 62 [00196]embedded image [00197]embedded image [00198]embedded image 63 [00199]embedded image [00200]embedded image [00201]embedded image [00202]embedded image [00203]embedded image 64 [00204]embedded image [00205]embedded image [00206]embedded image [00207]embedded image [00208]embedded image 65 [00209]embedded image [00210]embedded image [00211]embedded image 66 [00212]embedded image [00213]embedded image [00214]embedded image 67 [00215]embedded image [00216]embedded image [00217]embedded image 68 [00218]embedded image [00219]embedded image [00220]embedded image 69 [00221]embedded image [00222]embedded image [00223]embedded image 70 [00224]embedded image [00225]embedded image [00226]embedded image 71 [00227]embedded image [00228]embedded image [00229]embedded image 72 [00230]embedded image [00231]embedded image [00232]embedded image 73 [00233]embedded image [00234]embedded image [00235]embedded image 74 [00236]embedded image [00237]embedded image [00238]embedded image 75 [00239]embedded image [00240]embedded image [00241]embedded image 76 [00242]embedded image [00243]embedded image [00244]embedded image 77 [00245]embedded image [00246]embedded image [00247]embedded image 78 [00248]embedded image [00249]embedded image [00250]embedded image 79 [00251]embedded image [00252]embedded image [00253]embedded image 80 [00254]embedded image [00255]embedded image [00256]embedded image 81 [00257]embedded image [00258]embedded image [00259]embedded image

    [0164] The (a) in Examples 63 and 64 denote where the side chain is bonded to the ring with the indicated stereochemistry.

    TABLE-US-00002 TABLE 2 Substrate FAHALIDE SEKAM Ex Amount Amount SEKAM Amount BAS DRYAG Solvent  1 0.5 mmol 0.6 mmol — — K.sub.3PO.sub.4 — THF   1 eq 1.2 eq 2 eq 2 ml  2 0.5 mmol 0.6 mmol — — K.sub.2CO.sub.3 — THF   1 eq 1.2 eq 2 eq 2 ml  3 0.5 mmol 0.6 mmol — — Cs.sub.2CO.sub.3 — THF   1 eq 1.2 eq 2 eq 2 ml  4 0.5 mmol 0.6 mmol — — Cs.sub.2CO.sub.3 — THF   1 eq 1.2 eq 2 eq 2 ml  5 0.5 mmol 0.6 mmol — — Cs.sub.2CO.sub.3 — THF   1 eq 1.2 eq 3 eq 2 ml  6 0.5 mmol 0.6 mmol — — KOH — THF   1 eq 1.2 eq 2 eq 2 ml  7 0.5 mmol 0.6 mmol — — KOtBu — THF   1 eq 1.2 eq 2 ml  8 0.5 mmol 0.6 mmol — — NEt.sub.3 — THF   1 eq 1.2 eq 2 ml  9 0.5 mmol 0.6 mmol — — DBU — THF   1 eq 1.2 eq 2 ml 10 0.5 mmol 0.6 mmol — — Cs.sub.2CO.sub.3 — Et.sub.2O   1 eq 1.2 eq 2 eq 2 ml 11 0.5 mmol 0.6 mmol — — Cs.sub.2CO.sub.3 — Toluene   1 eq 1.2 eq 2 eq 2 ml 12 0.5 mmol 0.6 mmol — — Cs.sub.2CO.sub.3 — Heptane   1 eq 1.2 eq 2 eq 2 ml 13 0.5 mmol 0.6 mmol — — Cs.sub.2CO.sub.3 — Acetonitrile   1 eq 1.2 eq 2 eq 2 ml 14 0.5 mmol 0.6 mmol — — K.sub.3PO.sub.4 THF   1 eq 1.2 eq 2 eq 2 ml 15 0.5 mmol 0.6 mmol — — Cs.sub.2CO.sub.3 THF   1 eq 1.2 eq 2 eq 2 ml 16 0.5 mmol 0.6 mmol — — Cs.sub.2CO.sub.3 THF   1 eq 1.2 eq 2 eq 2 ml 17 0.6 mmol 0.5 mmol — — Cs.sub.2CO.sub.3 THF 1.2 eq   1 eq 2 eq 2 ml 18 0.6 mmol 0.5 mmol — — Cs.sub.2CO.sub.3 Toluol 1.2 eq   1 eq 3 eq 2 ml 19   2 mmol 0.5 mmol — — Cs.sub.2CO.sub.3 DCM   4 eq   1 eq 3 eq 2 ml 20 0.6 mmol 0.5 mmol — — K.sub.3PO.sub.4 THF 1.2 eq   1 eq 3 eq 2 ml 21 0.6 mmol 0.5 mmol — — K.sub.3PO.sub.4 THF 1.2 eq   1 eq 2 eq 2 ml 22 0.6 mmol 0.5 mmol — — Cs.sub.2CO.sub.3 THF 1.2 eq   1 eq 2 eq 2 ml 23 0.6 mmol 0.5 mmol — — Cs.sub.2CO.sub.3 THF 1.2 eq   1 eq 2 eq 2 ml 24 0.6 mmol 0.5 mmol — — Cs.sub.2CO.sub.3 THF 1.2 eq   1 eq 2 eq 2 ml 25 0.6 mmol 0.5 mmol — — Cs.sub.2CO.sub.3 THF 1.2 eq   1 eq 2 eq 2 ml 26 0.6 mmol 0.5 mmol — — Cs.sub.2CO.sub.3 THF 1.2 eq   1 eq 2 eq 2 ml 27 0.6 mmol 0.5 mmol — — Cs.sub.2CO.sub.3 THF 1.2 eq   1 eq 2 eq 2 ml 28 0.6 mmol 0.5 mmol — — Cs.sub.2CO.sub.3 THF 1.2 eq   1 eq 2 eq 2 ml 29 0.5 mmol   1 eq 0.6 mmol 1.2 eq [00260]embedded image  0.6 mmol  1.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 30 0.5 mmol   1 eq 0.6 mmol 1.2 eq [00261]embedded image  0.6 mmol  1.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 31 0.5 mmol   1 eq 0.6 mmol 1.2 eq [00262]embedded image  0.6 mmol  1.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 32 0.5 mmol   1 eq 0.6 mmol 1.2 eq [00263]embedded image  0.6 mmol  1.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 33 0.5 mmol   1 eq 0.6 mmol 1.2 eq [00264]embedded image  0.6 mmol  1.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 34 0.5 mmol   1 eq 0.6 mmol 1.2 eq [00265]embedded image  0.6 mmol  1.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 35 0.5 mmol   1 eq 0.6 mmol 1.2 eq [00266]embedded image  0.6 mmol  1.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 36 0.5 mmol   1 eq 0.6 mmol 1.2 eq [00267]embedded image  0.6 mmol  1.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 37 0.5 mmol   1 eq 0.6 mmol 1.2 eq [00268]embedded image 0.55 mmol  1.1 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 38 0.5 mmol   1 eq   1 mmol   2 eq [00269]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 39   1 mmol   2 eq 0.5 mmol   1 eq [00270]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 40 1.5 mmol   3 eq 0.5 mmol   1 eq [00271]embedded image 1.65 mmol  3.3 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 41   1 mmol   2 eq 0.5 mmol   1 eq [00272]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 1 eq 4A MS THF 2 ml 42   1 mmol   2 eq 0.5 mmol   1 eq [00273]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 0.1 eq 4A MS THF 2 ml 43   1 mmol   2 eq 0.5 mmol   1 eq [00274]embedded image  1.1 mmol  2.2 eq K.sub.3PO.sub.4 2 eq 4A MS THF 2 ml 44   1 mmol   2 eq 0.5 mmol   1 eq [00275]embedded image  1.1 mmol  2.2 eq K.sub.3PO.sub.4 2 eq 4A MS THF 2 ml 45   1 mmol   2 eq 0.5 mmol   1 eq [00276]embedded image  1.1 mmol  2.2 eq NEt.sub.3 2 eq 4A MS THF 2 ml 46   1 mmol   2 eq 0.5 mmol   1 eq [00277]embedded image  1.1 mmol  2.2 eq DBU 2 eq 4A MS THF 2 ml 47   1 mmol   2 eq 0.5 mmol   1 eq [00278]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS Toluene 2 ml 48   1 mmol   2 eq 0.5 mmol   1 eq [00279]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS Acetonitrile 2 ml 49   1 mmol   2 eq 0.5 mmol   1 eq [00280]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS Heptane 2 ml 50   1 mmol   2 eq 0.5 mmol   1 eq [00281]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 51   1 mmol   2 eq 0.5 mmol   1 eq [00282]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 52   1 mmol   2 eq 0.5 mmol   1 eq [00283]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 53   1 mmol   2 eq 0.5 mmol   1 eq [00284]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 54   1 mmol   2 eq 0.5 mmol   1 eq [00285]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 55   1 mmol   2 eq 0.5 mmol   1 eq [00286]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 56   1 mmol   2 eq 0.5 mmol   1 eq [00287]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 57   1 mmol   2 eq 0.5 mmol   1 eq [00288]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 58   1 mmol   2 eq 0.5 mmol   1 eq [00289]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 59   1 mmol   2 eq 0.5 mmol   1 eq [00290]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 60   1 mmol   2 eq 0.5 mmol   1 eq [00291]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 61   1 mmol   2 eq 0.5 mmol   1 eq [00292]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 62   1 mmol   2 eq 0.5 mmol   1 eq [00293]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 63   1 mmol   2 eq 0.5 mmol   1 eq [00294]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 64   1 mmol   2 eq 0.5 mmol   1 eq [00295]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 65   1 mmol   2 eq 0.5 mmol   1 eq [00296]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 66   1 mmol   2 eq 0.5 mmol   1 eq [00297]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 67   1 mmol   2 eq 0.5 mmol   1 eq [00298]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 68   1 mmol   2 eq 0.5 mmol   1 eq [00299]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 69   1 mmol   2 eq 0.5 mmol   1 eq [00300]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 70   1 mmol   2 eq 0.5 mmol   1 eq [00301]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 71   1 mmol   2 eq 0.5 mmol   1 eq [00302]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 72   1 mmol   2 eq 0.5 mmol   1 eq [00303]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 73 0.6 mmol 0.5 mmol — — Cs.sub.2CO.sub.3 — THF 1.2 eq   1 eq 3 eq 2 ml 74 0.6 mmol 0.5 mmol — — Cs.sub.2CO.sub.3 — Et.sub.2O 1.2 eq   1 eq 2 eq 2 ml 75 0.6 mmol 0.5 mmol — — Cs.sub.2CO.sub.3 — Et.sub.2O 1.2 eq   1 eq 2 eq 2 ml 76 0.6 mmol 0.5 mmol — — Cs.sub.2CO.sub.3 — Et.sub.2O 1.2 eq   1 eq 2 eq 2 ml 77   1 mmol   2 eq 0.5 mmol   1 eq [00304]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 78   1 mmol   2 eq 0.5 mmol   1 eq [00305]embedded image  1.1 mmol  2.2 eq K.sub.2CO.sub.3 2 eq 4A MS THF 2 ml 79   1 mmol   2 eq 0.5 mmol   1 eq [00306]embedded image  1.1 mmol  2.2 eq DBU 2 eq 4A MS THF 2 ml 80   1 mmol   2 eq 0.5 mmol   1 eq [00307]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS Toluene 2 ml 81   1 mmol   2 eq 0.5 mmol   1 eq [00308]embedded image  1.1 mmol  2.2 eq Cs.sub.2CO.sub.3 2 eq 4A MS THF 2 ml

    TABLE-US-00003 TABLE 3 Reaction Ex Temp. time Conv yield Remarks  1 25° C. 16 h 66% quantitative GC using Hexadecane as internal standard  2 25° C. 16 h 73% quantitative GC using Hexadecane as internal standard  3 25° C. 16 h 83% quantitative GC using Hexadecane as internal standard  4 25° C. 16 h 89% quantitative GC using Hexadecane as internal standard  5 25° C. 16 h 91% quantitative GC using Hexadecane as internal standard  6 25° C. 16 h 60% quantitative GC using Hexadecane as internal standard  7 25° C. 16 h 53% quantitative GC using Hexadecane as internal standard  8 25° C. 16 h 71% quantitative GC using Hexadecane as internal standard  9 25° C. 16 h 42% quantitative GC using Hexadecane as internal standard 10 25° C. 16 h 89% quantitative GC using Hexadecane as internal standard 11 25° C. 16 h 89% quantitative GC using Hexadecane as internal standard 12 25° C. 16 h 89% quantitative GC using Hexadecane as internal standard 13 25° C. 16 h 89% quantitative GC using Hexadecane as internal standard 14 60° C 96 h 33% .sup.19F-NMR (CF.sub.3Ph) 15 25° C. 16 h 45% GC-MS 16 25° C. 16 h 70% GC-MS 17 25° C. 16 h 100% 75% .sup.19F-NMR (CF.sub.3Ph) 18 25° C. 16 h  98% 82% .sup.19F-NMR (CF.sub.3Ph) 19 25° C. 16 h 100% 99% .sup.19F-NMR (CF.sub.3Ph) 20 25° C. 16 h 100% 55% .sup.19F-NMR (CF.sub.3Ph) additional 16% yield of   [00309]embedded image 21 60° C 96 h 20% .sup.19F-NMR (CF.sub.3Ph) 22 25° C. 16 h 81% .sup.19F-NMR (CF.sub.3Ph) 23 25° C. 16 h 81% .sup.19F-NMR (CF.sub.3Ph) 24 25° C. 16 h 57% .sup.19F-NMR (CF.sub.3Ph) 25 60° C. 96 h 33% .sup.19F-NMR (CF.sub.3Ph) 26 25° C. 16 h 66% .sup.19F-NMR (CF.sub.3Ph) 27 25° C. 16 h 64% .sup.19F-NMR (CF.sub.3Ph) 28 25° C. 16 h 40% .sup.19F-NMR (CF.sub.3Ph) 29 80° C. 18 h 50% Isolated yield, .sup.19F-NMR (CF.sub.3Ph): 62% yield 30 80° C. 18 h 58% Isolated yield identity by .sup.19F-NMR 31 80° C. 18 h 30% Isolated yield identity by .sup.19F-NMR 32 80° C. 18 h 48% Isolated yield identity by .sup.19F-NMR 33 80° C. 18 h 48% Isolated yield identity by .sup.19F-NMR 34 80° C. 18 h 56% Isolated yield identity by .sup.19F-NMR 35 80° C. 18 h 29% Isolated yield identity by .sup.19F-NMR 36 80° C. 18 h 46% Isolated yield identity by .sup.19F-NMR 37 80° C. 18 h 100% 62% .sup.19F-NMR (CF.sub.3Ph) 38 80° C. 18 h 100% 48% .sup.19F-NMR (CF.sub.3Ph) 39 80° C. 18 h 100% 67% Isolated yield .sup.19F-NMR (CF.sub.3Ph): 80% yield 40 80° C. 18 h 100% 76% .sup.19F-NMR (CF.sub.3Ph) 41 80° C. 18 h 100% 28% .sup.19F-NMR (CF.sub.3Ph) 42 80° C. 18 h  84% 40% .sup.19F-NMR (CF.sub.3Ph) 43 80° C. 18 h 100% 45% .sup.19F-NMR (CF.sub.3Ph) 44 80° C. 18 h 100% 67% .sup.19F-NMR (CF.sub.3Ph) 45 80° C. 18 h  92% 22% .sup.19F-NMR (CF.sub.3Ph) 46 80° C. 18 h 100% 73% .sup.19F-NMR (CF.sub.3Ph) 47 80° C. 18 h 100% 58% .sup.19F-NMR (CF.sub.3Ph) 48 80° C. 18 h 100% 41% .sup.19F-NMR (CF.sub.3Ph) 49 80° C. 18 h 100% 31% .sup.19F-NMR (CF.sub.3Ph) 50 50° C. 18 h  64% 40% .sup.19F-NMR (CF.sub.3Ph) 51 80° C. 18 h 60% isolated yield .sup.19F-NMR (CF.sub.3Ph): 70% yield 52 80° C. 18 h 20% isolated yield .sup.19F-NMR (CF.sub.3Ph): 40% yield 53 80° C. 18 h 67% isolated yield .sup.19F-NMR (CF.sub.3Ph): 75% yield 54 80° C. 18 h 74% isolated yield .sup.19F-NMR (CF.sub.3Ph): 80% yield 55 80° C. 18 h 64% isolated yield .sup.19F-NMR (CF.sub.3Ph): 79% yield 56 80° C. 18 h 54% isolated yield .sup.19F-NMR (CF.sub.3Ph): 76% yield 57 80° C. 18 h 31% isolated yield .sup.19F-NMR (CF.sub.3Ph): 73% yield 58 80° C. 18 h 55% isolated yield .sup.19F-NMR (CF.sub.3Ph): 85% yield 59 80° C. 18 h 66% isolated yield .sup.19F-NMR (CF.sub.3Ph): 76% yield 60 80° C. 18 h 52% isolated yield 61 80° C. 18 h 77% isolated yield .sup.19F-NMR (CF.sub.3Ph): 79% yield 62 80° C. 18 h 52% isolated yield .sup.19F-NMR (CF.sub.3Ph): 52% yield 63 80° C. 18 h 48% isolated yield 64 80° C. 18 h 60% isolated yield .sup.19F-NMR (CF.sub.3Ph): 67% yield 65 80° C. 18 h 87% isolated yield .sup.19F-NMR (CF.sub.3Ph): 88% yield 66 80° C. 18 h 80% isolated yield .sup.19F-NMR (CF.sub.3Ph): 85% yield 67 80° C. 18 h 76% isolated yield .sup.19F-NMR (CF.sub.3Ph): 67% yield 68 80° C. 18 h 84% .sup.19F-NMR (CF.sub.3Ph): 84% yield 69 50° C. 18 h 81% .sup.19F-NMR (CF.sub.3Ph): 81% yield 70 50° C. 18 h 82% .sup.19F-NMR (CF.sub.3Ph): 82% yield 71 80° C. 18 h 53% isolated yield .sup.19F-NMR (CF.sub.3Ph): 57% yield 72 80° C. 18 h 52% isolated yield .sup.19F-NMR (CF.sub.3Ph): 55% yield 73 25° C. 16 h 100% 64% .sup.19F-NMR (CF.sub.3Ph) Usage of CDCh with some humidity Additional yield of 15% of   [00310]embedded image 74 80° C. 18 h 71% isolated yield .sup.19F-NMR (CF.sub.3Ph) 75 80° C. 18 h 60% isolated yield .sup.19F-NMR (CF.sub.3Ph) 76 80° C. 18 h 55% isolated yield .sup.19F-NMR (CF.sub.3Ph) 77 80° C. 18 h 100% 80% .sup.19F-NMR (CF.sub.3Ph) 78 80° C. 18 h 100% 67% .sup.19F-NMR (CF.sub.3Ph) 79 80° C. 18 h 100% 73% .sup.19F-NMR (CF.sub.3Ph) 80 80° C. 18 h 100% 58% .sup.19F-NMR (CF.sub.3Ph) 81 80° C. 18 h 30% isolated yield .sup.19F-NMR (CF.sub.3Ph): 38% yield