Heteroacene and organic electroluminescence device using the same
11524967 · 2022-12-13
Assignee
Inventors
Cpc classification
C07D491/153
CHEMISTRY; METALLURGY
H10K85/656
ELECTRICITY
H10K85/6574
ELECTRICITY
H10K85/626
ELECTRICITY
H10K85/6572
ELECTRICITY
C07D519/00
CHEMISTRY; METALLURGY
International classification
C07D491/153
CHEMISTRY; METALLURGY
C07D519/00
CHEMISTRY; METALLURGY
Abstract
A heteroacene having the following formula (F) is described. An organic electroluminescence device comprises the heteroacene as a phosphorescent host, a fluorescent host, a hole blocking layer, or an electron transport layer. The heteroacene lowers a driving voltage, or increases a current efficiency or a half-life of the organic electroluminescence device. ##STR00001##
Claims
1. A heteroacene having one of the following formulas: ##STR00108## ##STR00109## ##STR00110## ##STR00111## ##STR00112## ##STR00113## ##STR00114## ##STR00115## ##STR00116## ##STR00117## ##STR00118## ##STR00119## ##STR00120## ##STR00121## ##STR00122## ##STR00123## ##STR00124## ##STR00125## ##STR00126## ##STR00127## ##STR00128## ##STR00129## ##STR00130## ##STR00131## ##STR00132## ##STR00133## ##STR00134## ##STR00135## ##STR00136## ##STR00137## ##STR00138## ##STR00139## ##STR00140## ##STR00141## ##STR00142## ##STR00143## ##STR00144## ##STR00145## ##STR00146## ##STR00147## ##STR00148## ##STR00149## ##STR00150## ##STR00151## ##STR00152##
2. An organic electroluminescence device comprising an anode, a cathode and one or more organic layers formed between the anode and the cathode, wherein at least one of the organic layers comprises the heteroacene according to claim 1.
3. The organic electroluminescence device according to claim 2, wherein the organic layers comprise an emissive layer having a host, and wherein the heteroacene is comprised as the host.
4. The organic electroluminescence device according to claim 3, wherein the host is a fluorescent host.
5. The organic electroluminescence device according to claim 3, wherein the host is a phosphorescent host.
6. The organic electroluminescence device according to claim 2, wherein the organic layers comprise an electron transport layer, and wherein the heteroacene of claim 1 is comprised as the electron transport layer.
7. The organic electroluminescence device according to claim 2, wherein the organic layers comprise a hole blocking layer, and wherein the heteroacene of claim 1 is comprised as the hole blocking layer.
8. The organic electroluminescent device according to claim 2, wherein the organic electroluminescence device is a lighting panel.
9. The organic electroluminescent device according to claim 2, wherein the organic electroluminescence device is a backlight panel.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
DESCRIPTION OF THE PREFERRED EMBODIMENTS
(5) What probed into the invention is the organic compound and organic EL device using the organic compound. Detailed descriptions of the production, structure and elements will be provided as follows such that the invention can be fully understood. Obviously, the application of the invention is not confined to specific details familiar to those skilled in the art. On the other hand, the common elements and procedures that are known to everyone are not described in details to avoid unnecessary limits of the invention. Some preferred embodiments of the present invention will now be described in greater detail as follows. However, it should be recognized that the present invention can be practiced in a wide range of other embodiments besides those explicitly described, that is, this invention can also be applied extensively to other embodiments, and the scope of the present invention is expressly not limited except as specified in the accompanying claims.
(6) In a first embodiment of the present invention, an organic compound, also a heteroacene, may have the following formula (F):
(7) ##STR00004##
wherein X may be a divalent bridge selected from the group consisting of O, S, Se and CR.sub.1R.sub.2. Y may be a divalent bridge selected from the group consisting of O, S, Se and CR.sub.1R.sub.2 if Y.sub.1 is N-L-Z. Y.sub.1 may be a divalent bridge selected from the group consisting of O, S, Se and CR.sub.1R.sub.2 if Y is N-L-Z. A and B may independently represent a substituted or unsubstituted fused ring hydrocarbons unit having one or two rings. L may represent a single bond or a substituted or unsubstituted divalent arylene group having 6 to 30 ring carbon atoms. Z may represent a substituted or unsubstituted aryl group having 6 to 60 carbon atoms, and a substituted or unsubstituted hetroaryl group having 6 to 60 carbon atoms. R.sub.1 and R.sub.2 may independently be selected from the group consisting of a hydrogen atom, a halide, a substituted or unsubstituted alkyl group having 1 to 30 carbon atoms, a substituted or unsubstituted aryl group having 6 to 30 carbon atoms.
(8) In an organic EL device, the organic compound of formula (F) may be a phosphorescent host or a fluorescent host of an emissive layer. The organic compound of formula (F) may also be an electron transport material (ETM) to form an electron transport layer (ETL), or a hole blocking material (HBM) to form a hole blocking layer (HBL) in an organic EL device.
(9) In a second embodiment of the present invention, a first organic EL device using the organic compound of formula (F) is disclosed.
(10)
(11) Referring to
(12) Still referring to
(13)
(14)
(15) Referring to
(16) Referring to
(17)
(18) Referring to
(19) Referring to
(20) In formula (F), L may be selected from the group consisting of:
(21) ##STR00005##
wherein Ar.sub.1 to Ar.sub.11 may independently represent a hydrogen atom, a substituted or unsubstituted aryl group having 6 to 30 carbon atoms, or a substituted or unsubstituted hetroaryl group having 6 to 30 carbon atoms.
(22) In formula (F), Z may represent one of the following substituents:
(23) ##STR00006## ##STR00007## ##STR00008##
(24) The organic compound of the present invention may have the following formula (1) or formula (2):
(25) ##STR00009##
(26) The organic compound of the present invention may also have one of formula (3) to formula (7):
(27) ##STR00010##
(28) In formula (1) to formula (7), the same definition as described in paragraph [0013] to paragraph [0027].
(29) The organic compound of the present invention may has one of the following formulas:
(30) ##STR00011## ##STR00012## ##STR00013## ##STR00014## ##STR00015## ##STR00016## ##STR00017## ##STR00018## ##STR00019## ##STR00020## ##STR00021## ##STR00022## ##STR00023## ##STR00024## ##STR00025## ##STR00026## ##STR00027## ##STR00028## ##STR00029## ##STR00030## ##STR00031## ##STR00032## ##STR00033## ##STR00034## ##STR00035## ##STR00036## ##STR00037## ##STR00038## ##STR00039## ##STR00040## ##STR00041## ##STR00042## ##STR00043## ##STR00044## ##STR00045## ##STR00046## ##STR00047## ##STR00048## ##STR00049## ##STR00050## ##STR00051## ##STR00052## ##STR00053## ##STR00054## ##STR00055## ##STR00056## ##STR00057## ##STR00058## ##STR00059## ##STR00060## ##STR00061## ##STR00062## ##STR00063## ##STR00064## ##STR00065## ##STR00066## ##STR00067##
(31) Referring to
(32) The emissive layer 550E may comprise a 15% dopant RG1 and the organic compound of formula (F) 550F doped with the dopant RG1. The dopant RG1 may be a red guest material for tuning the wavelength at which the emissive layer 550E emits light, so that the color of emitted light may be red. The organic compound of formula (F) may be a host 550F of the emissive layer 550E.
(33)
(34) To those organic EL devices of
(35) The I-V-B (at 1000 nits) test reports of those organic EL devices of
(36) TABLE-US-00001 TABLE 1 Driving Current Host Voltage Efficiency Device Half-life (H11 or 550F) Dopant (V) (cd/A) Color (hours) H11 RG1 4.3 17.5 red 800 EX9 RG1 4.1 22.7 red 980 EX10 RG1 4.0 23.6 red 1030 EX18 RG1 4.5 19.4 red 820 EX20 RG1 3.5 26.3 red 1350 EX22 RG1 3.6 25.5 red 1230 EX27 RG1 3.6 25.1 red 1190 EX37 RG1 3.7 24.7 red 1140 EX43 RG1 3.9 24.0 red 1060 EX54 RG1 4.3 21.0 red 870 EX55 RG1 4.2 21.7 red 920 EX56 RG1 4.7 17.0 red 700 EX60 RG1 3.8 24.4 red 1110 EX78 RG1 4.4 20.4 red 820 EX85 RG1 4.4 20.7 red 840 EX93 RG1 4.2 22.0 red 950 EX94 RG1 4.0 23.5 red 1020 EX99 RG1 4.5 19.5 red 800 EX100 RG1 3.5 25.9 red 1270 EX130 RG1 3.9 23.6 red 1040 EX134 RG1 4.1 23.1 red 1000 EX137 RG1 3.8 24.8 red 1160 EX140 RG1 4.2 21.3 red 900 EX147 RG1 4.6 19.0 red 770
(37) According to Table 1, in the first organic EL device 610, the organic compound of formula (F) comprised as a host 550F of
(38) A method of producing the first organic EL device 610 of
(39) Before vapor deposition of the organic layers, cleaned ITO substrates may be further treated by UV and ozone. All pre-treatment processes for ITO substrate are under clean room (class 100), so that an anode 510 may be formed.
(40) One or more organic layers 320, 330, 340 (
(41) Referring to
(42) Referring to
(43) Referring to
(44) On the emissive layer 550, a compound HB3 may be used as a hole blocking material (HBM) to form a hole blocking layer 560 having a thickness of about 5 nm. 2-ethyl-1-(4-(10-(naphthalen-2-yl)anthracen-9-yl)phenyl)-1H-benzo[d]imidazole (ET2) may be applied as an electron transport material to co-deposit with 8-hydroxyquinolato-lithium (LiQ) at a ratio of about, for example, 1:1, thereby forming an electron transport layer (ETL) 570 of the organic EL device 610 or 300. The electron transport layer may have a thickness of about 25 nm.
(45) Referring to
(46) The organic compounds ET2, LiQ, RG1, HB3, EB3, H11, HAT-CN and HT1 for producing the organic EL device 300 or 610 in this invention may receptively have the following formulas:
(47) ##STR00068## ##STR00069## ##STR00070##
(48)
(49) To those organic EL devices of
(50) The I-V-B (at 1000 nits) test reports of those organic EL devices of
(51) TABLE-US-00002 TABLE 2 Driving Current Material for Voltage Efficiency Device Half-life ETL 570 or 570F (V) (cd/A) Color (hours) ET2 4.3 17.5 red 800 EX4 4.0 18.5 red 930 EX18 3.9 19.0 red 970 EX43 4.1 18.1 red 890 EX99 3.9 18.8 red 950 EX130 4.3 17.6 red 840 EX147 4.4 17.3 red 780
(52) According to Table 2, in the second organic EL device 620, the organic compound of formula (F) comprised as an electron transport layer 570F of
(53)
(54) To those organic EL devices of
(55) The I-V-B (at 1000 nits) test reports of those organic EL devices of
(56) TABLE-US-00003 TABLE 2 Driving Current Material for Voltage Efficiency Device Half-life HBL 560 or 560F (V) (cd/A) Color (hours) HB3 4.3 17.5 red 800 EX4 4.3 17.6 red 820 EX43 4.1 18.1 red 870 EX130 4.5 17.0 red 760 EX147 4.0 18.5 red 910
(57) According to Table 3, in the third organic EL device 630, the organic compound of formula (F) comprised as a hole blocking layer 560F of
(58) Referring to
(59) Detailed preparation of the organic compounds of the present invention will be clarified by exemplary embodiments below, but the present invention is not limited thereto. EXAMPLES 1 to 18 show the preparation of the organic compounds of the present invention.
Example 1
(60) Synthesis of EX4
(61) Synthesis of Intermediate A
(62) ##STR00071##
(63) The compound 2,3-dibromobenzo[b]thiophene (50.0 g, 171.1 mmole) was mixed with 1000 ml of dry THF. To the mixture, 82.0 ml of N-butyllithium (205.0 mmol) was added at −78° C. and the mixture was stirred for 1 h. After the reaction finished, 32.0 g (240.0 mmol) of Copper(II) Chloride was added and the mixture was stirred 16 h. The solution was extracted with ethyl acetate and water. The organic layer was dried with anhydrous magnesium sulfate and then the solvent was evaporated under reduced pressure. The residue was purified by column chromatography on silica to give product (32.6 g, 90%) as a purple brown solid.
(64) Synthesis of Intermediate B
(65) ##STR00072##
(66) A mixture of 60.0 g (142.0 mmole) of Intermediate A, 59.0 g (426.0 mmole) of Potassium carbonate, 20.0 g (170.0 mmole) of Tertiary butyl carbamate, 4.0 g (43.0 mmole) of N,N′dimethylethylenediamine, 27.0 g (142.0 mmole) of Copper iodide, and 600 ml of Toluene was placed under nitrogen, and then heated at 125° C. while stirring for 12 h. After the reaction finished, the mixture was allowed to cool to room temperature. The solution was extracted with 200 ml of Ethyl acetate (3 times) and then 300 ml of Water. The organic layer was dried with anhydrous magnesium sulfate, and then the solvent was evaporated under reduced pressure. The residue was purified by column chromatography on silica to give product (10.0 g, 25%) as a white solid. MS(m/z, EI.sup.+):278.3
(67) Synthesis of EX4
(68) ##STR00073##
(69) A mixture of 3 g (10.7 mmole) of Intermediate B, 4.0 g (11.8 mmol) of 2-Chloro-4-(biphenyl-3-yl)-6-phenyl-1,3,5-triazine, 0.49 g (0.54 mmol) of Pd.sub.2(dba).sub.3, 2.0 g (21.4 mmol) of Sodium tert-butoxide, and 30 ml of o-Xylene was degassed and placed under nitrogen, and then heated at 150° C. for 16 h. After the reaction finished, the mixture was allowed to cool to room temperature. Then 300 ml of MeOH was added while stirring and the precipitated product was filtered off with suction to give (3.0 g, 49%) of light yellow product, which was recrystallized from EtOH. MS(m/z, EI.sup.+): 585.7
Example 2
(70) Synthesis of EX9
(71) Synthesis of EX9
(72) ##STR00074##
(73) A mixture of 3 g (10.7 mmole) of Intermediate B, 4.9 g (12.8 mmol) of 9-Bromo-10-(2-naphthyl)anthracene, 0.49 g (0.54 mmol) of Pd.sub.2(dba).sub.3, 2.0 g (21.4 mmol) of Sodium tert-butoxide, and 30 ml of o-Xylene was degassed and placed under nitrogen, and then heated at 150° C. for 16 h. After the reaction finished, the mixture was allowed to cool to room temperature. Then 300 ml of MeOH was added while stirring and the precipitated product was filtered off with suction to give (3.5 g, 57%) of light yellow product, which was recrystallized from EtOH. MS(m/z, EI.sup.+): 580.7
Example 3
(74) Synthesis of EX18
(75) Synthesis of EX18
(76) ##STR00075##
(77) A mixture of 3 g (10.7 mmole) of Intermediate B, 4.4 g (12.8 mmol) of 4-([1,1′-Biphenyl]-3-yl)-6-chloro-2-phenylpyrimidine, 0.49 g (0.54 mmol) of Pd.sub.2(dba).sub.3, 2.0 g (21.4 mmol) of Sodium tert-butoxide, and 30 ml of o-Xylene was degassed and placed under nitrogen, and then heated at 150° C. for 16 h. After the reaction finished, the mixture was allowed to cool to room temperature. Then 300 ml of MeOH was added while stirring and the precipitated product was filtered off with suction to give (2.9 g, 47%) of light yellow product, which was recrystallized from EtOH. MS(m/z, EI.sup.+): 584.7
Example 4
(78) Synthesis of EX20
(79) Synthesis of EX20
(80) ##STR00076##
(81) A mixture of 3 g (10.7 mmole) of Intermediate B, 3.7 g (12.8 mmol) of 2-Chloro-4-phenylbenzoquinazoline, 0.49 g (0.54 mmol) of Pd.sub.2(dba).sub.3, 2.0 g (21.4 mmol) of Sodium tert-butoxide, and 30 ml of o-Xylene was degassed and placed under nitrogen, and then heated at 150° C. for 16 h. After the reaction finished, the mixture was allowed to cool to room temperature. Then 300 ml of MeOH was added while stirring and the precipitated product was filtered off with suction to give (3.2 g, 56%) of yellow product, which was recrystallized from EtOH. MS(m/z, EI.sup.+): 532.6
Example 5
(82) Synthesis of EX22
(83) Synthesis of EX22
(84) ##STR00077##
(85) A mixture of 3 g (10.7 mmole) of Intermediate B, 5.1 g (13.9 mmol) of 4-([1,1′-Biphenyl]-4-yl)-2-chlorobenzo[h]quinazoline, 0.49 g (0.54 mmol) of Pd.sub.2(dba).sub.3, 2.0 g (21.4 mmol) of Sodium tert-butoxide, and 30 ml of o-Xylene was degassed and placed under nitrogen, and then heated at 150° C. for 16 h. After the reaction finished, the mixture was allowed to cool to room temperature. Then 300 ml of MeOH was added while stirring and the precipitated product was filtered off with suction to give (2.7 g, 41%) of yellow product, which was recrystallized from EtOH. MS(m/z, EI.sup.+): 608.7
Example 6
(86) Synthesis of EX27
(87) Synthesis of EX27
(88) ##STR00078##
(89) A mixture of 3 g (10.7 mmole) of Intermediate B, 3.7 g (12.8 mmol) of 2-Chloro-4-(naphthalen-2-yl)quinazoline, 0.49 g (0.54 mmol) of Pd.sub.2(dba).sub.3, 2.0 g (21.4 mmol) of Sodium tert-butoxide, and 30 ml of o-Xylene was degassed and placed under nitrogen, and then heated at 150° C. for 16 h. After the reaction finished, the mixture was allowed to cool to room temperature. Then 300 ml of MeOH was added while stirring and the precipitated product was filtered off with suction to give (3.1 g, 54%) of yellow product, which was recrystallized from EtOH. MS(m/z, EI.sup.+): 532.7
Example 7
(90) Synthesis of EX37
(91) Synthesis of EX37
(92) ##STR00079##
(93) A mixture of 3 g (10.7 mmole) of Intermediate B, 4.7 g (13.9 mmol) of 2-Chloro-4-phenyldibenzo[f,h]quinazoline, 0.49 g (0.54 mmol) of Pd.sub.2(dba).sub.3, 2.0 g (21.4 mmol) of Sodium tert-butoxide, and 30 ml of o-Xylene was degassed and placed under nitrogen, and then heated at 150° C. for 16 h. After the reaction finished, the mixture was allowed to cool to room temperature. Then 300 ml of MeOH was added while stirring and the precipitated product was filtered off with suction to give (2.7 g, 44%) of yellow product, which was recrystallized from EtOH. MS(m/z, EI.sup.+): 582.7
Example 8
(94) Synthesis of EX43
(95) Synthesis of EX43
(96) ##STR00080##
(97) A mixture of 3 g (10.7 mmole) of Intermediate B, 3.7 g (12.8 mmol) of 2-Chloro-9-phenyl-1,10-phenanthroline, 0.49 g (0.54 mmol) of Pd.sub.2(dba).sub.3, 2.0 g (21.4 mmol) of Sodium tert-butoxide, and 30 ml of o-Xylene was degassed and placed under nitrogen, and then heated at 150° C. for 16 h. After the reaction finished, the mixture was allowed to cool to room temperature. Then 300 ml of MeOH was added while stirring and the precipitated product was filtered off with suction to give (3.5 g, 61%) of yellow product, which was recrystallized from EtOH. MS(m/z, EI.sup.+): 532.6
Example 9
(98) Synthesis of EX55
(99) Synthesis of Intermediate C
(100) ##STR00081##
(101) The compound 2,3-Dibromobenzofuran (50.0 g, 181.2 mmole) was mixed with 1000 ml of dry THF. To the mixture, 87.0 ml of N-butyllithium (217.4 mmol) was added at −78° C. and the mixture was stirred for 1 h. After the reaction finished, 34.1 g (253.7 mmol) of Copper(II) Chloride was added and the mixture was stirred 16 h. The solution was extracted with ethyl acetate and water. The organic layer was dried with anhydrous magnesium sulfate and then the solvent was evaporated under reduced pressure. The residue was purified by column chromatography on silica to give product (61.8 g, 87%) as a brown solid.
(102) Synthesis of Intermediate D
(103) ##STR00082##
(104) A mixture of 50.0 g (127.5 mmole) of Intermediate C, 52.9 g (382.5 mmole) of Potassium carbonate, 17.9 g (153 mmole) of Tertiary butyl carbamate, 3.6 g (38.2 mmole) of N,N′dimethylethylenediamine, 24.3 g (127.5 mmole) of Copper iodide, and 500 ml of Toluene was placed under nitrogen, and then heated at 125° C. while stirring for 12 h. After the reaction finished, the mixture was allowed to cool to room temperature. The solution was extracted with 200 ml of Ethyl acetate (3 times) and then 300 ml of Water. The organic layer was dried with anhydrous magnesium sulfate, and then the solvent was evaporated under reduced pressure. The residue was purified by column chromatography on silica to give product (9.8 g, 31%) as a white solid. MS(m/z, EI.sup.+): 246.2
(105) Synthesis of EX55
(106) ##STR00083##
(107) A mixture of 3 g (12.1 mmole) of Intermediate D, 6.9 g (14.5 mmol) of 2-(10-Bromoanthracen-9-yl)naphtho[2,3-b]benzofuran, 0.55 g (0.60 mmol) of Pd.sub.2(dba).sub.3, 2.3 g (24.2 mmol) of Sodium tert-butoxide, and 30 ml of o-Xylene was degassed and placed under nitrogen, and then heated at 150° C. for 16 h. After the reaction finished, the mixture was allowed to cool to room temperature. Then 300 ml of MeOH was added while stirring and the precipitated product was filtered off with suction to give (3.7 g, 48%) of light yellow product, which was recrystallized from EtOH. MS(m/z, EI.sup.+): 638.7
Example 9
(108) Synthesis of EX60
(109) Synthesis of EX60
(110) ##STR00084##
(111) A mixture of 3 g (12.1 mmole) of Intermediate D, 4.2 g (14.5 mmol) of 2-Chloro-4-pyridinylbenzo[h]quinazoline, 0.55 g (0.60 mmol) of Pd.sub.2(dba).sub.3, 2.3 g (24.2 mmol) of Sodium tert-butoxide, and 30 ml of o-Xylene was degassed and placed under nitrogen, and then heated at 150° C. for 16 h. After the reaction finished, the mixture was allowed to cool to room temperature. Then 300 ml of MeOH was added while stirring and the precipitated product was filtered off with suction to give (3.5 g, 57%) of light yellow product, which was recrystallized from EtOH. MS(m/z, EI.sup.+): 501.5
Example 10
(112) Synthesis of EX78
(113) Synthesis of Intermediate E
(114) ##STR00085##
(115) The compound 2,3-Dibromo-1,1-dimethylindene (50.0 g, 165.6 mmole) was mixed with 1000 ml of dry THF. To the mixture, 79.5 ml of N-butyllithium (198.7 mmol) was added at −78° C. and the mixture was stirred for 1 h. After the reaction finished, 31.2 g (231.8 mmol) of Copper(II) Chloride was added and the mixture was stirred 16 h. The solution was extracted with ethyl acetate and water. The organic layer was dried with anhydrous magnesium sulfate and then the solvent was evaporated under reduced pressure. The residue was purified by column chromatography on silica to give product (68.4 g, 93%) as a brown solid.
(116) Synthesis of Intermediate F
(117) ##STR00086##
(118) A mixture of 60.0 g (135.0 mmole) of Intermediate E, 56.0 g (405.0 mmole) of Potassium carbonate, 19.0 g (162.0 mmole) of Tertiary butyl carbamate, 3.8 g (40.5 mmole) of N,N′dimethylethylenediamine, 25.7 g (135.0 mmole) of Copper iodide, and 600 ml of Toluene was placed under nitrogen, and then heated at 125° C. while stirring for 12 h. After the reaction finished, the mixture was allowed to cool to room temperature. The solution was extracted with 200 ml of Ethyl acetate (3 times) and then 300 ml of Water. The organic layer was dried with anhydrous magnesium sulfate, and then the solvent was evaporated under reduced pressure. The residue was purified by column chromatography on silica to give product (13.7 g, 34%) as a white solid. MS(m/z, EI.sup.+): 298.4
(119) Synthesis of EX78
(120) ##STR00087##
(121) A mixture of 3.0 g (10.0 mmole) of Intermediate F, 4.6 g (12.0 mmol) of 9-Bromo-10-(2-naphthyl)anthracene, 0.46 g (0.5 mmol) of Pd.sub.2(dba).sub.3, 2.8 g (20.0 mmol) of Sodium tert-butoxide, and 30 ml of o-Xylene was degassed and placed under nitrogen, and then heated at 150° C. for 16 h. After the reaction finished, the mixture was allowed to cool to room temperature. Then 300 ml of MeOH was added while stirring and the precipitated product was filtered off with suction to give (3.0 g, 50%) of light yellow product, which was recrystallized from EtOH. MS(m/z, EI.sup.+): 600.8
Example 11
(122) Synthesis of EX85
(123) Synthesis of Intermediate G
(124) ##STR00088##
(125) The compound 2,3-Dibromobenzoselenophene (20.0 g, 59.0 mmole) was mixed with 400 ml of dry THF. To the mixture, 28.3 ml of N-butyllithium (70.8 mmol) was added at −78° C. and the mixture was stirred for 1 h. After the reaction finished, 11.1 g (82.6 mmol) of Copper(II) Chloride was added and the mixture was stirred 16 h. The solution was extracted with ethyl acetate and water. The organic layer was dried with anhydrous magnesium sulfate and then the solvent was evaporated under reduced pressure. The residue was purified by column chromatography on silica to give product (27.8 g, 91%) as a brown solid.
(126) Synthesis of Intermediate H
(127) ##STR00089##
(128) A mixture of 27.0 g (52.1 mmole) of Intermediate G, 21.6 g (156.3 mmole) of Potassium carbonate, 7.3 g (62.5 mmole) of Tertiary butyl carbamate, 1.5 g (15.6 mmole) of N,N′dimethylethylenediamine, 9.9 g (52.1 mmole) of Copper iodide, and 270 ml of Toluene was placed under nitrogen, and then heated at 125° C. while stirring for 12 h. After the reaction finished, the mixture was allowed to cool to room temperature. The solution was extracted with 100 ml of Ethyl acetate (3 times) and then 150 ml of Water. The organic layer was dried with anhydrous magnesium sulfate, and then the solvent was evaporated under reduced pressure. The residue was purified by column chromatography on silica to give product (6.2 g, 32%) as a white solid. MS(m/z, EI.sup.+): 372.2
(129) Synthesis of EX85
(130) ##STR00090##
(131) A mixture of 3.0 g (8.0 mmole) of Intermediate H, 3.7 g (9.6 mmol) of 9-Bromo-10-(2-naphthyl)anthracene, 0.37 g (0.4 mmol) of Pd.sub.2(dba).sub.3, 1.5 g (16.0 mmol) of Sodium tert-butoxide, and 30 ml of o-Xylene was degassed and placed under nitrogen, and then heated at 150° C. for 16 h. After the reaction finished, the mixture was allowed to cool to room temperature. Then 300 ml of MeOH was added while stirring and the precipitated product was filtered off with suction to give (2.6 g, 48%) of light yellow product, which was recrystallized from EtOH. MS(m/z, EI.sup.+): 674.5
Example 12
(132) Synthesis of EX93
(133) Synthesis of Intermediate I
(134) ##STR00091##
(135) A mixture of 12.0 g (50.0 mmole) of Ethyl 3-chlorobenzo[b]thiophene-2-carboxylate, 11.2 g (100.0 mmole) of potassium tert-butoxide, 12.2 g (100.0 mmole) of Ethyl mercaptoacetate, and 300 ml of Dry THF was placed under nitrogen, and then at room temperature while stirring for 1 h. Then 11.2 g (100.0 mmole) of potassium tert-butoxide was added and heated at 80° C. while stirring for 3 h. After the reaction finished, the mixture was allowed to cool to room temperature. Then 300 ml of H.sub.2O and 50 ml concentrated HCl was added while stirring and the precipitated product was filtered off with suction to give (11.2 g, 80%) of white product, which was recrystallized from EtOH.
(136) Synthesis of Intermediate J
(137) ##STR00092##
(138) A mixture of 11.2 g (40.0 mmole) of Intermediate I, and 200 ml of 90% sulfuric acid was placed under nitrogen, and then heated at 80° C. while stirring for 2 h. After the reaction finished, the mixture was allowed to cool to room temperature. The solution was extracted with 150 ml of Dichloromethane (3 times) and then 300 ml of water. The organic layer was dried with anhydrous magnesium sulfate, and then the solvent was evaporated under reduced pressure. The residue was purified by column chromatography on silica to give product (5.8 g, 70%) as a light yellow solid.
(139) Synthesis of Intermediate K
(140) ##STR00093##
(141) A mixture of 5.8 g (28.1 mmole) of Intermediate J, 4.9 g (33.7 mmole) of Phenylhydrazine hydrochloride, 4.6 g (56.2 mmole) of Sodium acetate, and 140 ml of Acetic acid was placed under nitrogen, and then heated at 120° C. for 1 h. After the reaction finished, the mixture was allowed to cool to room temperature. The precipitated product was filtered off with suction to give (6.3 g, 80%) of white product, which was washed from Toluene and EtOH. MS(m/z, EI.sup.+): 278.4
(142) Synthesis of EX93
(143) ##STR00094##
(144) A mixture of 3.0 g (10.7 mmole) of Intermediate K, 4.9 g (12.8 mmol) of 9-Bromo-10-(2-naphthyl)anthracene, 0.49 g (0.54 mmol) of Pd.sub.2(dba).sub.3, 2.0 g (21.4 mmol) of Sodium tert-butoxide, and 30 ml of o-Xylene was degassed and placed under nitrogen, and then heated at 150° C. for 16 h. After the reaction finished, the mixture was allowed to cool to room temperature. Then 300 ml of MeOH was added while stirring and the precipitated product was filtered off with suction to give (2.4 g, 39%) of light yellow product, which was recrystallized from EtOH. MS(m/z, EI.sup.+): 580.7
Example 13
(145) Synthesis of EX99
(146) Synthesis of EX99
(147) ##STR00095##
(148) A mixture of 3.0 g (10.7 mmole) of Intermediate K, 4.4 g (12.8 mmol) of 4-([1,1′-Biphenyl]-3-yl)-6-chloro-2-phenylpyrimidine, 0.49 g (0.54 mmol) of Pd.sub.2(dba).sub.3, 2.0 g (21.4 mmol) of Sodium tert-butoxide, and 30 ml of o-Xylene was degassed and placed under nitrogen, and then heated at 150° C. for 16 h. After the reaction finished, the mixture was allowed to cool to room temperature. Then 300 ml of MeOH was added while stirring and the precipitated product was filtered off with suction to give (3.5 g, 57%) of light yellow product, which was recrystallized from EtOH. MS(m/z, EI.sup.+): 584.7
Example 14
(149) Synthesis of EX100
(150) Synthesis of EX100
(151) ##STR00096##
(152) A mixture of 3.0 g (10.7 mmole) of Intermediate K, 3.7 g (12.8 mmol) of 2-Chloro-4-phenylbenzoquinazoline, 0.49 g (0.54 mmol) of Pd.sub.2(dba).sub.3, 2.0 g (21.4 mmol) of Sodium tert-butoxide, and 30 ml of o-Xylene was degassed and placed under nitrogen, and then heated at 150° C. for 16 h. After the reaction finished, the mixture was allowed to cool to room temperature. Then 300 ml of MeOH was added while stirring and the precipitated product was filtered off with suction to give (3.0 g, 54%) of yellow product, which was recrystallized from EtOH. MS(m/z, EI.sup.+): 532.6
Example 15
(153) Synthesis of EX130
(154) Synthesis of Intermediate L
(155) ##STR00097##
(156) A mixture of 14.5 g (50.0 mmole) of Ethyl 1-chloronaphtho[2,1-b]thiophene-2-carboxylate, 11.2 g (100.0 mmole) of potassium tert-butoxide, 12.2 g (100.0 mmole) of Ethyl mercaptoacetate, and 300 ml of Dry THF was placed under nitrogen, and then at room temperature while stirring for 1 h. Then 11.2 g (100.0 mmole) of potassium tert-butoxide was added and heated at 80° C. while stirring for 3 h. After the reaction finished, the mixture was allowed to cool to room temperature. Then 300 ml of H.sub.2O and 50 ml concentrated HCl was added while stirring and the precipitated product was filtered off with suction to give (11.5 g, 70%) of pale yellow product, which was recrystallized from EtOH.
(157) Synthesis of Intermediate M
(158) ##STR00098##
(159) A mixture of 11.5 g (35.0 mmole) of Intermediate L, and 175 ml of 90% sulfuric acid was placed under nitrogen, and then heated at 80° C. while stirring for 2 h. After the reaction finished, the mixture was allowed to cool to room temperature. The solution was extracted with 150 ml of Dichloromethane (3 times) and then 300 ml of water. The organic layer was dried with anhydrous magnesium sulfate, and then the solvent was evaporated under reduced pressure. The residue was purified by column chromatography on silica to give product (7.7 g, 86%) as a light yellow solid.
(160) Synthesis of Intermediate N
(161) ##STR00099##
(162) A mixture of 7.7 g (30.1 mmole) of Intermediate M, 5.2 g (36.1 mmole) of Phenylhydrazine hydrochloride, 4.9 g (60.2 mmole) of Sodium acetate, and 150 ml of Acetic acid was placed under nitrogen, and then heated at 120° C. for 1 h. After the reaction finished, the mixture was allowed to cool to room temperature. The precipitated product was filtered off with suction to give (5.4 g, 55%) of light yellow product, which was washed from Toluene and EtOH. MS(m/z, EI.sup.+): 328.4
(163) Synthesis of EX130
(164) ##STR00100##
(165) A mixture of 3.0 g (9.1 mmole) of Intermediate K, 2.3 g (10.9 mmol) of 2-Chloro-1,10-phenanthroline, 0.42 g (0.45 mmol) of Pd.sub.2(dba).sub.3, 1.7 g (18.2 mmol) of Sodium tert-butoxide, and 30 ml of o-Xylene was degassed and placed under nitrogen, and then heated at 150° C. for 16 h. After the reaction finished, the mixture was allowed to cool to room temperature. Then 300 ml of MeOH was added while stirring and the precipitated product was filtered off with suction to give (2.0 g, 43%) of yellow product, which was recrystallized from EtOH. MS(m/z, EI.sup.+): 506.6
Example 16
(166) Synthesis of EX137
(167) Synthesis of Intermediate O
(168) ##STR00101##
(169) A mixture of 10.0 g (39.0 mmole) of Intermediate M, 9.1 g (46.8 mmole) of 1-Naphthalenylhydrazine hydrochloride, 6.4 g (78.0 mmole) of Sodium acetate, and 195 ml of Acetic acid was placed under nitrogen, and then heated at 120° C. for 1 h. After the reaction finished, the mixture was allowed to cool to room temperature. The precipitated product was filtered off with suction to give (11.1 g, 75%) of light yellow product, which was washed from Toluene and EtOH. MS(m/z, EI.sup.+): 378.5
(170) Synthesis of EX137
(171) ##STR00102##
(172) A mixture of 3.0 g (7.9 mmole) of Intermediate O, 2.7 g (9.5 mmol) of 2-Chloro-4-phenylbenzoquinazoline, 0.36 g (0.40 mmol) of Pd.sub.2(dba).sub.3, 1.5 g (15.8 mmol) of Sodium tert-butoxide, and 30 ml of o-Xylene was degassed and placed under nitrogen, and then heated at 150° C. for 16 h. After the reaction finished, the mixture was allowed to cool to room temperature. Then 300 ml of MeOH was added while stirring and the precipitated product was filtered off with suction to give (1.6 g, 31%) of yellow product, which was recrystallized from EtOH. MS(m/z, EI.sup.+): 632.8
Example 17
(173) Synthesis of EX140
(174) Synthesis of EX140
(175) ##STR00103##
(176) A mixture of 3.0 g (7.9 mmole) of Intermediate O, 3.6 g (9.5 mmol) of 9-Bromo-10-(2-naphthyl)anthracene, 0.36 g (0.40 mmol) of Pd.sub.2(dba).sub.3, 1.5 g (15.8 mmol) of Sodium tert-butoxide, and 30 ml of o-Xylene was degassed and placed under nitrogen, and then heated at 150° C. for 16 h. After the reaction finished, the mixture was allowed to cool to room temperature. Then 300 ml of MeOH was added while stirring and the precipitated product was filtered off with suction to give (2.4 g, 44%) of light yellow product, which was recrystallized from EtOH. MS(m/z, EI.sup.+): 680.9
Example 18
(177) Synthesis of EX147
(178) Synthesis of Intermediate P
(179) ##STR00104##
(180) A mixture of 11.2 g (50.0 mmole) of Ethyl 3-chlorobenzofuran-2-carboxylate, 11.2 g (100.0 mmole) of potassium tert-butoxide, 12.2 g (100.0 mmole) of Ethyl mercaptoacetate, and 300 ml of Dry THF was placed under nitrogen, and then at room temperature while stirring for 1 h. Then 11.2 g (100.0 mmole) of potassium tert-butoxide was added and heated at 80° C. while stirring for 3 h. After the reaction finished, the mixture was allowed to cool to room temperature. Then 300 ml of H.sub.2O and 50 ml concentrated HCl was added while stirring and the precipitated product was filtered off with suction to give (9.6 g, 73%) of white product, which was recrystallized from EtOH.
(181) Synthesis of Intermediate Q
(182) ##STR00105##
(183) A mixture of 9.6 g (36.5 mmole) of Intermediate P, and 190 ml of 90% sulfuric acid was placed under nitrogen, and then heated at 80° C. while stirring for 2 h. After the reaction finished, the mixture was allowed to cool to room temperature. The solution was extracted with 150 ml of Dichloromethane (3 times) and then 300 ml of water. The organic layer was dried with anhydrous magnesium sulfate, and then the solvent was evaporated under reduced pressure. The residue was purified by column chromatography on silica to give product (5.2 g, 75%) as a light yellow solid.
(184) Synthesis of Intermediate R
(185) ##STR00106##
(186) A mixture of 5.2 g (27.4 mmole) of Intermediate Q, 4.7 g (32.9 mmole) of Phenylhydrazine hydrochloride, 4.5 g (54.8 mmole) of Sodium acetate, and 137 ml of Acetic acid was placed under nitrogen, and then heated at 120° C. for 1 h. After the reaction finished, the mixture was allowed to cool to room temperature. The precipitated product was filtered off with suction to give (5.1 g, 71%) of white product, which was washed from Toluene and EtOH. MS(m/z, EI.sup.+): 262.3
(187) Synthesis of EX147
(188) ##STR00107##
(189) A mixture of 3.0 g (11.4 mmole) of Intermediate R, 3.6 g (13.7 mmol) of 4-Chloro-2,6-diphenylpyrimidine, 0.52 g (0.57 mmol) of Pd.sub.2(dba).sub.3, 2.2 g (22.8 mmol) of Sodium tert-butoxide, and 30 ml of o-Xylene was degassed and placed under nitrogen, and then heated at 150° C. for 16 h. After the reaction finished, the mixture was allowed to cool to room temperature. Then 300 ml of MeOH was added while stirring and the precipitated product was filtered off with suction to give (2.4 g, 43%) of light yellow product, which was recrystallized from EtOH. MS(m/z, EI.sup.+): 492.6
(190) Obviously, many modifications and variations are possible in light of the above teachings. It is therefore to be understood that within the scope of the appended claims the present invention can be practiced otherwise than as specifically described herein. Although specific embodiments have been illustrated and described herein, it is obvious to those skilled in the art that many modifications of the present invention may be made without departing from what is intended to be limited solely by the appended claims.