Triazine compound containing carbazolyl, intermediate and organic electroluminescent device

By designing a triazine compound containing carbazolyl as the main material of the light emitting layer of the organic electroluminescent device, the shortcomings of the existing OLED materials in terms of efficiency, life and driving voltage are solved, and higher performance organic electroluminescent devices are achieved.

CN119978017APending Publication Date: 2025-05-13FUYANG SINEVA MATERIAL TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510151247.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-11
Publication Date
2025-05-13

AI Technical Summary

Technical Problem

Existing organic electroluminescent (OLED) materials have not yet reached satisfactory levels in terms of efficiency, lifetime and driving voltage, especially in the development of blue light host materials.

Method used

A triazine compound containing carbazolyl was designed, and its structure was optimized to be suitable as the main material of the light emitting layer of an organic electroluminescent device.

Benefits of technology

Higher current efficiency, longer life and lower driving voltage of organic electroluminescent devices are achieved.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The invention provides a triazine compound containing carbazolyl, an intermediate and an organic electroluminescent device. The triazine compound containing carbazolyl has a structure as shown in a formula I in the specification. The structure of the triazine compound containing carbazolyl is designed, so that the triazine compound is suitable for being used as a main body material of a luminescent layer of the organic electroluminescent device, and the organic electroluminescent device has relatively high current efficiency, relatively long service life and relatively low driving voltage.
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Description

Technical Field

[0001] The invention belongs to the technical field of electroluminescent materials, and in particular relates to a triazine compound containing a carbazole group, an intermediate and an organic electroluminescent device. Background Art

[0002] Electroluminescence, also known as electric field luminescence, or EL for short, is a luminescence phenomenon in which a solid directly converts electrical energy into light energy under the action of an electric field generated by a voltage applied to two electrodes. Among them, the electroluminescence of organic materials belongs to injection-type composite luminescence. Organic electroluminescent materials can be divided into hole injection layer (HIL), hole transport layer (HTL), light-emitting layer (EML), electron transport layer (ETL), electron injection layer (EIL) and other materials according to their functions and device structures in organic electroluminescent (OLED) devices.

[0003] Currently, organic electroluminescence (OLED) has become the mainstream display technology, and accordingly, various new OLED materials have also been developed. However, its various performances need to be improved, especially in terms of efficiency, life, voltage, etc. In order to meet people's higher requirements for OLED devices, the field urgently needs to develop more types of blue light host materials with higher performance. Summary of the invention

[0004] In view of the shortcomings of the prior art, the present invention aims to provide a triazine compound containing carbazole groups, an intermediate and an organic electroluminescent device. In the present invention, the structure of the triazine compound containing carbazole groups is designed so that it is suitable for use as a host material of the light-emitting layer of the organic electroluminescent device, so that the organic electroluminescent device has higher current efficiency, longer life and lower driving voltage.

[0005] To achieve this object, the present invention adopts the following technical solutions:

[0006] In a first aspect, the present invention provides a triazine compound containing a carbazole group, wherein the triazine compound containing a carbazole group has a structure shown in the following formula I:

[0007]

[0008] Wherein, Ar1 and Ar2 are each independently selected from any one of C6-C40 aryl or C6-C30 heteroaryl;

[0009] At least one of R1, R2, R3, and R4 is selected from any one of the groups represented by formula I-1 or the groups represented by formula I-2, and the others are selected from H;

[0010] The hydrogen atoms in the compound of formula I may be independently substituted by at least one of a deuterium atom (D), -F, -CN, a C6-C20 aryl group, a C1-C12 alkyl group or a C1-C12 alkoxy group.

[0011] In the present invention, the structure of the triazine compound containing carbazole is designed to make it suitable as the main material of the light-emitting layer of the organic electroluminescent device, so that the organic electroluminescent device has higher current efficiency, longer life and lower driving voltage.

[0012] It should be noted that, in the present invention, "D" represents a deuterium atom, and unless otherwise indicated in the present invention, H and hydrogen therein all represent "protium", and the same shall apply hereinafter.

[0013] In the present invention, C6-C40 can be C6, C8, C10, C12, C16, C20, C24, C28, C30, C32, C36 or C40, etc.

[0014] C6-C30 can be C6, C8, C10, C12, C16, C20, C24, C28 or C30, etc.

[0015] C1-C12 can be C1, C2, C4, C6, C8, C10 or C12, etc.

[0016] C6-C20 can be C6, C8, C10, C12, C16 or C20, etc.

[0017] The following are preferred technical solutions of the present invention, but are not intended to limit the technical solutions provided by the present invention. Through the following preferred technical solutions, the objectives and beneficial effects of the present invention can be better achieved and realized.

[0018] As a preferred technical solution of the present invention, the C6-C40 aromatic group is selected from any one of phenyl, biphenyl, terphenyl, naphthyl, naphthylphenyl, anthracenyl, phenanthryl, fluorenyl, benzofluorenyl, dibenzofluorenyl, naphthanofluorenyl, pyrene, perylenyl, spirofluorenyl, triphenylene, fluoranthenyl, hydrogenated benzanthryl, indenofluorenyl, benzoindenofluorenyl, dibenzoindenofluorenyl, naphthanofluorenyl or benzonaphthofluorenyl.

[0019] As a preferred technical solution of the present invention, the C6-C30 heteroaryl group is selected from any one of carbazolyl, dibenzofuranyl, dibenzothiophenyl, naphthiobenzofuranyl, naphthiobenzothiophenyl, dinaphthofuranyl and dinaphthothiophenyl.

[0020] As a preferred technical solution of the present invention, the C6-C20 aromatic group is selected from any one of phenyl, biphenyl, terphenyl, naphthyl, anthracenyl, phenanthryl, fluorenyl, triphenylene and fluoranthene.

[0021] As a preferred technical solution of the present invention, the C1-C12 alkyl group is selected from any one of methyl, ethyl, propyl, butyl, pentyl, hexyl, octyl or decyl.

[0022] As a preferred technical solution of the present invention, the C1-C12 alkoxy group is selected from any one of methoxy, ethoxy, propoxy, butoxy, pentyloxy or hexyloxy.

[0023] As a preferred technical solution of the present invention, Ar1 and Ar2 are each independently selected from any one of phenyl, carbazolyl, biphenyl, fluorenyl, naphthyl, triphenylene, fluoranthene, indenofluorenyl, dibenzofuranyl, dibenzothienyl, naphthiobenzofuranyl or naphthiobenzothienyl, preferably any one of phenyl, naphthyl, biphenyl, dibenzofuranyl, dibenzothienyl, fluorenyl and carbazolyl.

[0024] As a preferred technical solution of the present invention, any one of R1, R2, R3, and R4 is selected from any one of the groups shown in formula I-1 or the groups shown in formula I-2, and the others are selected from H.

[0025] Preferably, any one of R2 and R3 is selected from any one of the groups represented by formula I-1 or the groups represented by formula I-2, and the others are selected from H.

[0026] Preferably, the R2 is selected from any one of the groups shown in formula I-1 or the groups shown in formula I-2, and the R1, R3, and R4 are selected from H.

[0027] Preferably, the R3 is selected from any one of the groups shown in formula I-1 or the groups shown in formula I-2, and the R1, R2, and R4 are selected from H.

[0028] As a preferred technical solution of the present invention, the hydrogen atoms in the compound of formula I can be independently replaced by at least one of -D, -F, -CN, phenyl, naphthyl, biphenyl, methyl, ethyl, propyl, butyl, methoxy, ethoxy, propoxy or butoxy.

[0029] Preferably, the hydrogen atoms in the compound of formula I can be independently substituted by at least one of -D, methyl, -F, -CN, methyl, and tert-butyl, methoxy, ethoxy, phenyl, and naphthyl.

[0030] As a preferred technical solution of the present invention, the triazine compound containing a carbazole group is selected from any one of the following substituted or unsubstituted compounds:

[0031]

[0032]

[0033]

[0034] The substitution means that the hydrogen atoms in the triazine compound containing carbazole groups can be independently replaced by deuterium atoms. Preferably, the triazine compound containing carbazole groups is selected from any one of the following compounds:

[0035]

[0036]

[0037] It should be noted that the present invention does not have any special restrictions on the preparation method of the above-mentioned triazine compounds containing carbazole groups, and the commonly used preparation methods in the art are applicable.

[0038] In a second aspect, the present invention provides an intermediate, wherein the intermediate comprises the following compound:

[0039]

[0040] The intermediate is used to prepare the triazine compound containing carbazole group as described in the first aspect.

[0041] In a third aspect, the present invention provides an organic electroluminescent device, the organic electroluminescent device comprising an anode, a cathode and an organic thin film layer disposed between the anode and the cathode;

[0042] The organic thin film layer includes the triazine compound containing a carbazole group as described in the first aspect.

[0043] As a preferred technical solution of the present invention, the organic thin film layer includes a light-emitting layer, and the main material of the light-emitting layer includes the triazine compound containing carbazole groups as described in the first aspect.

[0044] Preferably, the light-emitting layer is a phosphorescent light-emitting layer.

[0045] As a preferred technical solution of the present invention, the organic electroluminescent device is a blue light organic electroluminescent device.

[0046] The luminescent layer in the present invention includes a luminescent layer main material and a doping material, wherein the doping material is also called a dye or a phosphorescent luminescent material. The luminescent layer main material can be a single compound or a mixture of two or more compounds.

[0047] The light-emitting layer includes a phosphorescent light-emitting layer, and the phosphorescent light-emitting layer includes a green phosphorescent light-emitting layer, a red phosphorescent light-emitting layer, and a yellow phosphorescent light-emitting layer.

[0048] The volume percentage of the main material in the phosphorescent layer is 60% to 99.9% (for example, it can be 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 98% or 99.9%, etc.), preferably 70% to 99.5%, and more preferably 85% to 95%.

[0049] In the present invention, the doping material of the light-emitting layer may be a phosphorescent material, which is also called a triplet light-emitting material, and refers to the light emitted from a triplet excited state. The specific selection of the phosphorescent material in the present invention is not particularly limited, and the doping materials of the light-emitting layer commonly used in the art are applicable, including but not limited to: a compound having a structure shown in Formula PD:

[0050]

[0051] Wherein, M is selected from any one of Ir, Pt, Pd, Os, Ti, Zr, Hf, Eu, Tb, Tm, Cu or Au;

[0052] Y1-Y4 are each independently selected from carbon or nitrogen;

[0053] Y1 and Y2 can be connected by a single bond or a double bond, and Y3 and Y4 can be connected by a single bond or a double bond;

[0054] Cy1 and Cy2 are each independently selected from phenyl, naphthyl, fluorenyl, spirofluorenyl, indenyl, pyrrolyl, thienyl, furanyl, imidazolyl, pyrazolyl, thiazolyl, isothiazolyl, pyridyl, pyrazinyl, pyrimidinyl, pyridazinyl, quinolyl, isoquinolyl, benzoquinolyl, quinoxalinyl, quinazolinyl, carbazolyl, benzimidazolyl, benzofuranyl, benzothienyl, isobenzothienyl, benzimidazolyl, benzoxazolyl, triazolyl, tetrazolyl, oxadiazolyl, triazine, dibenzofuranyl, dibenzothienyl, N-heterocarbazolyl, N-heterodibenzofuranyl, wherein Cy1 and Cy2 may be optionally linked to each other via a single bond or an organic linking group;

[0055] Any two ligands of M, or more than two ligands, may be connected by a single bond or a double bond, or may be bridged by O or S, or may be connected by any chemical group or chemical structure to form a structural form that conforms to chemical principles;

[0056] R 91 and R 92each independently selected from -H, -D, -F, -Cl, -Br, -I, hydroxyl, cyano, nitro, amino, amidino, hydrazine, hydrazone, carboxylic acid, carboxylate, sulfonic acid, sulfonate, phosphoric acid, phosphate, -SF5, substituted or unsubstituted C1-C60 (e.g., C1, C5, C10, C15, C20, C25, C30, C35, C40, C45, C50, C55 or C60, etc.) alkyl, substituted or unsubstituted C2-C6 C2-C60 (for example, C2, C5, C10, C15, C20, C25, C30, C35, C40, C45, C50, C55 or C60, etc.) alkynyl, substituted or unsubstituted C1-C60 (for example, C1, C5, C10, C15, C20, C25, C30, C35, C40, C45, C50, C55 or C60, etc.) C2-C10 (for example, C2, C3, C4, C5, C6, C7, C8, C9 or C10) heterocycloalkyl, substituted or unsubstituted C6-C60 (for example, C6, C12, C15, C18, C24, C30, C32, C36, C40, C42, C54 or C60) aryl, substituted or unsubstituted C6-C60 (for example, C2, C3, C4, C5, C6, C7, C8, C9 or C10) For example, it can be any one of C6, C12, C15, C18, C24, C30, C32, C36, C40, C42, C54 or C60) aryloxy, substituted or unsubstituted C6-C60 (for example, it can be C6, C12, C15, C18, C24, C30, C32, C36, C40, C42, C54 or C60) arylthio, substituted or unsubstituted monovalent non-aromatic fused polycyclic group, and substituted or unsubstituted monovalent non-aromatic fused heteropolycyclic group.

[0057] a1 and a2 are each independently an integer selected from 1-5, for example, 1, 2, 3, 4 or 5;

[0058] b is an integer selected from 0-4, for example, 0, 1, 2, 3 or 4;

[0059] a is selected from 1, 2 or 3;

[0060] L1 is a monovalent organic ligand, a divalent organic ligand or a trivalent organic ligand.

[0061] Preferably, the compound of formula PD is selected from any one of the following compounds:

[0062]

[0063]

[0064]

[0065]

[0066] In the present invention, the organic thin film layer includes a hole layer, and the hole layer includes a hole injection layer, a hole transport layer and an electron blocking layer.

[0067] The hole injection layer material includes a P-type dopant. The P-type dopant refers to a dopant that coexists with the hole injection layer material in the OLED device and can oxidize the hole injection layer material, thereby acting as an electron acceptor and promoting the movement of holes in the hole injection layer to the anode. In the present invention, the difference between the absolute value of the LUMO of the P-type dopant and the absolute value of the HOMO of the hole layer material is greater than -0.2V, preferably greater than -0.1eV, more preferably greater than 0eV, more preferably greater than 0.1eV, and more preferably greater than 0.2eV.

[0068] The P-type dopant is present in the hole injection layer in a volume percentage of 1% to 10% (e.g., 1%, 2%, 4%, 6%, 8% or 10%). In the present invention, there is no particular limitation on the type of the P-type dopant, and illustratively, the compounds D-1 to D-13 disclosed in CN113728453A or the compounds HI-1 to HI-9 described below can be selected:

[0069]

[0070]

[0071] In the present invention, the hole layer material (including the hole injection layer, the hole transport layer and the electron blocking layer) has a structure shown in the following formula HT-GH4:

[0072]

[0073] Among them, L 41 is selected from a single bond, a C6-C40 (e.g., C6, C8, C10, C12, C16, C20, C24, C28, C30, C32, C36, or C40, etc.) aryl, or a C6-C20 (e.g., C6, C8, C10, C12, C16, or C20, etc.) heteroaryl;

[0074] Ar 41 ,Ar 42Each is independently selected from C6-C40 (for example, C6, C8, C10, C12, C16, C20, C24, C28, C30, C32, C36 or C40, etc.) aryl, C6-C20 (for example, C6, C8, C10, C12, C16 or C20, etc.) heteroaryl;

[0075] X is selected from CR 41 R 42 or NR 43 , where R 41 , R 42 , R 43 Each independently selected from substituted or unsubstituted phenyl (the substituted substituent is selected from C1-C6 (for example, C1, C2, C3, C4, C5 or C6) alkyl, C1-C6 (for example, C1, C2, C3, C4, C5 or C6) alkoxy, dibenzofuranyl), naphthyl, triphenylene, fluoranthene, 9,9-dimethylfluorenyl, biphenyl, substituted or unsubstituted dibenzofuranyl (the substituted substituent is phenyl), substituted or unsubstituted dibenzothiophene (the substituted substituent is phenyl), dibenzofuran-substituted thienyl, C1-C6 (for example, C1, C2, C3, C4, C5 or C6) alkyl, any one of R 41 , R 42 They can be linked to form rings via single bonds.

[0076] The compound of formula HT-GH4 is selected from any one of the following compounds:

[0077]

[0078]

[0079]

[0080] In the present invention, the hole layer material (including the hole injection layer, the hole transport layer and the electron blocking layer) also includes a compound having a structure shown in the following formula IA or a compound having a structure shown in the following formula IB:

[0081]

[0082] Wherein, L is selected from any one of C6-C40 (e.g., C6, C8, C10, C12, C16, C20, C24, C28, C30, C32, C36 or C40, etc.) arylene, dibenzofuranyl or dibenzothiophenylene;

[0083] m is selected from an integer between 0 and 4 (for example, 0, 1, 2, 3 or 4), and n is selected from 0 or 1;

[0084] Ar is selected from any one of triphenylene, fluoranthenylene, dibenzofuranylene or dibenzothiophenylene;

[0085] Ar1 and Ar2 are each independently selected from any one of a C6-C40 (e.g., C6, C8, C10, C12, C16, C20, C24, C28, C30, C32, C36 or C40, etc.) aryl group, a dibenzofuranyl group or a dibenzothiophenyl group;

[0086] Ar1 and Ar, Ar2 and Ar, and Ar1 and Ar2 can each independently be connected or bridged by a single bond, O, S, CR1R2, or NR.

[0087] R, R1, and R2 are each independently selected from any one of C1-C20 (for example, C1, C2, C4, C6, C8, C10, C12, C14, C16, C18, or C20, etc.) alkyl, C6-C40 (for example, C6, C8, C10, C12, C16, C20, C24, C28, C30, C32, C36, or C40, etc.) aryl, dibenzofuranyl, or dibenzothiophenyl;

[0088] H in the compound of formula IB and the compound of formula IA can each independently be replaced by at least one of -F, -CN, -D (deuterium atom), C1-C6 alkyl, C1-C6 alkoxy, phenyl, biphenyl, naphthyl, phenanthryl, anthracenyl, fluorenyl, benzofluorenyl, dibenzofluorenyl, triphenylene, fluoranthenyl, pyrenyl, perylenyl, spirofluorenyl, indenofluorenyl or hydrogenated benzanthryl.

[0089] Preferably, Ar is a fluoranthenyl group, and m+n>1.

[0090] Preferably, H in the compound of formula IB and the compound of formula IA can be replaced by at least one of -F, -CN, -D, C1-C3 alkyl (for example, methyl, ethyl or propyl), C1-C3 alkoxy (for example, methoxy, ethoxy or propoxy), phenyl, biphenyl, triphenylene, and fluoranthene.

[0091] Preferably, L, Ar1, Ar2 are each independently selected from at least one of phenyl, biphenyl, naphthyl, phenanthryl, anthracenyl, fluorenyl, benzofluorenyl, dibenzofluorenyl, triphenylene, fluoranthenyl, pyrene, perylenyl, spirofluorenyl, indenofluorenyl or hydrogenated benzanthryl.

[0092] Preferably, the compound of formula IB is selected from the following structures:

[0093]

[0094] Wherein, L is phenylene;

[0095] Ar1, Ar2, and m have the same protection scope as described above.

[0096] Preferably, the compound of formula IB is selected from any one of the following compounds:

[0097]

[0098]

[0099] In the OLED device provided by the present invention, the hole layer material may include conventional hole materials in the art in addition to the compound described in formula HT-GH4, the compound of formula IB, and the compound of formula IA, without special restrictions. Exemplary includes but is not limited to: triarylamine compounds or carbazole compounds. Triarylamine compounds or carbazole compounds containing more than 3 N atoms are preferred, because the HOMO of triarylamine compounds or carbazole compounds containing more than 3 N atoms is higher (smaller absolute value), and is more suitable for use as hole injection layer materials. Triarylamine compounds or carbazole compounds containing 2 or 1 N atoms can be used as hole transport layer materials. Some compounds or carbazole compounds containing 1 N atom, if they have a higher LUMO, can also be used as electron blocking layer materials.

[0100] The triarylamine compound or the carbazole compound is used as the hole layer material, and the hole layer material includes the following structure:

[0101]

[0102]

[0103] Among them, Ar 601 ~Ar 609 Each independently selected from any one of substituted or unsubstituted C6-C40 (for example, C6, C8, C10, C12, C16, C20, C24, C28, C30, C32, C36 or C40, etc.) aryl, substituted or unsubstituted dibenzofuranyl, substituted or unsubstituted dibenzothiophenyl, substituted or unsubstituted naphthobenzofuranyl, substituted or unsubstituted naphthobenzothiophenyl, substituted or unsubstituted dinaphthofuranyl, substituted or unsubstituted dinaphthothiophenyl;

[0104] And Ar 601 ~Ar 609 Ar atoms adjacent to or connected to the same N atom 601 ~Ar 609 , can be connected by single key or through O, S, CR 701 R 702 NR703 bridging;

[0105] R 701 , R 702 , R 703 is selected from C6-C40 (e.g., C6, C8, C10, C12, C16, C20, C24, C28, C30, C32, C36, or C40, etc.) aromatic groups, C6-C20 (e.g., C6, C8, C10, C12, C16, or C20, etc.) heteroaryl groups, C1-C6 (e.g., C1, C2, C3, C4, C5, or C6) alkyl groups, and R 701 , R 702 Can connect via one-touch.

[0106] The hole blocking layer (HBL) can confine holes and / or excitons within the EL to improve the current efficiency and lifetime of the device. Compared with the EL material closest to the HBL interface, the HBL material has a lower HOMO (larger absolute value) and / or higher triplet energy.

[0107] The electron transport layer (ETL) may include a material capable of transporting electrons. The electron transport layer may be intrinsic (undoped) or doped, and doping may be used to enhance conductivity. In the present invention, there is no particular restriction on the ETL material, and any metal complex or organic compound may be used as long as it can transport electrons. The general electron transport layer material contains the following structural fragments: at least one of a pyridine structure, a pyrimidine structure, a triazine structure, a benzimidazole structure, a benzoxazole structure, a benzothiazole structure, an N-naphthalene structure, an N-coffee structure, an N-carbazole structure, an N-dibenzofuran structure, and an N-dibenzothiophene structure.

[0108] In the present invention, there is no special restriction on the electron transport layer material, which exemplarily includes but is not limited to:

[0109]

[0110]

[0111]

[0112]

[0113]

[0114] In the present invention, the material of the cathode is a metal with a low work function (e.g., alkaline earth metal, alkali metal, main group metal or lanthanide element (e.g., Ca, Ba, Mg, Al, In, Mg, Yb, Sm, etc.)), a metal alloy composed of multiple metals (alloy composed of alkali metal or alkaline earth metal and silver, such as an alloy composed of magnesium and silver) or a multilayer structure. If the cathode material is a multilayer structure, in addition to the metals mentioned above, other metals with relatively high work functions, such as Ag or Al, can also be used. In this case, a combination of the metals is usually used, such as Ca / Ag, Mg / Ag or Ba / Ag.

[0115] It is also possible to introduce a thin intermediate layer of a material with a high dielectric constant between the metal cathode and the organic semiconductor to form a multilayer structure; the material with a high dielectric constant can also be called an electron injection material, and fluorides of alkali metals or alkaline earth metals, and corresponding oxides or carbonates (such as LiF, Li2O, BaF2, MgO, NaF, CsF, Cs2CO3, etc.) or lithium quinoline (LiQ) can be selected.

[0116] Compared with the prior art, the present invention has the following beneficial effects:

[0117] In the present invention, the structure of the triazine compound containing carbazole is designed to make it suitable as the main material of the light-emitting layer of the organic electroluminescent device, so that the organic electroluminescent device has higher current efficiency, longer life and lower driving voltage. DETAILED DESCRIPTION

[0118] For the convenience of understanding the present invention, the present invention lists the following embodiments. It should be understood by those skilled in the art that the embodiments are only to help understand the present invention and should not be regarded as specific limitations of the present invention.

[0119] Preparation Example 1 Synthesis of Intermediate M1

[0120] This preparation example provides an intermediate M1 and a synthesis method thereof, the synthesis method is as follows:

[0121]

[0122] (1) Synthesis of intermediate M1-1

[0123] In a nitrogen atmosphere, 0.01 mol of intermediate MA and 100 mL of tetrahydrofuran were added to a three-necked flask, then the temperature was lowered to -78°C, 0.011 mol of butyl lithium in n-hexane solution was slowly added, and then -78°C to -60°C was maintained for 30 min, 0.012 mol of intermediate MB / 0.0001 mol Pd(dba)2 and 0.0001 mol of anhydrous nickel chloride were added, the temperature was slowly raised to room temperature for reaction for 2 h, and then the temperature was raised to reflux for reaction for 2 h, the temperature was lowered, water and toluene were added for separation, the organic layer was washed with water until neutral, dried over anhydrous magnesium sulfate, the desiccant was filtered out, concentrated to dryness, separated by silica gel column chromatography, and eluted with petroleum ether to obtain intermediate M1-1 (3.1 g).

[0124] The intermediate M1-1 was subjected to mass spectrometry detection, and the m / z was 513.19

[0125] (2) Synthesis of intermediate M1

[0126]

[0127] To a three-necked flask, add 0.01 mol of intermediate M1-1, 80 mL of DMSO, and 0.03 mol of potassium tert-butoxide, then control the temperature at 20-25°C, introduce oxygen (rate 100 mL / min) for 3 hours, then add water and toluene for separation, wash the organic layer with water until neutral, dry it over anhydrous magnesium sulfate, filter out the desiccant, concentrate to dryness, separate by silica gel column chromatography, and elute with petroleum ether to obtain intermediate M1 (3.8 g).

[0128] The obtained intermediate M1 was subjected to mass spectrometry detection, and the m / z was 423.14.

[0129] Preparation Example 2 Synthesis of Intermediate M2

[0130] This preparation example provides an intermediate M2 and a synthesis method thereof, the synthesis method is as follows:

[0131]

[0132] (1) Synthesis of intermediate M2-1

[0133] Referring to the synthesis of intermediate M1-1, intermediate M2-1 was prepared.

[0134] The intermediate M2-1 was subjected to mass spectrometry detection, and the m / z was 520.24

[0135] (2) Synthesis of intermediate M2

[0136] Referring to the synthesis of intermediate M1, intermediate M2 was prepared.

[0137] The obtained intermediate M2 was subjected to mass spectrometry detection, and the m / z was 430.19.

[0138] Preparation Example 3 Synthesis of Intermediate M3

[0139] This preparation example provides an intermediate M3 and a synthesis method thereof, the synthesis method is as follows:

[0140]

[0141] (1) Synthesis of intermediate M3-1

[0142] Referring to the synthesis of intermediate M1-1, intermediate M3-1 was prepared.

[0143] The obtained intermediate M3-1 was subjected to mass spectrometry detection, and the m / z was 513.19

[0144] (2) Synthesis of intermediate M3

[0145] Referring to the synthesis of intermediate M1, intermediate M3 was prepared.

[0146] The obtained intermediate M3 was subjected to mass spectrometry detection, and the m / z was 423.14.

[0147] Preparation Example 4 Synthesis of Intermediate M4

[0148] This preparation example provides an intermediate M4 and a synthesis method thereof, the synthesis method is as follows:

[0149]

[0150] (1) Synthesis of intermediate M4-1

[0151] Referring to the synthesis of intermediate M1-1, intermediate M4-1 was prepared.

[0152] The intermediate M4-1 was subjected to mass spectrometry detection, and the m / z was 543.24

[0153] (2) Synthesis of intermediate M4

[0154] Referring to the synthesis of intermediate M1, intermediate M4 was prepared.

[0155] The obtained intermediate M4 was subjected to mass spectrometry detection, and the m / z was 453.19.

[0156] Synthesis Example 1 Synthesis of Compound P1

[0157] This synthesis example provides compound P1 and its synthesis method, and the synthesis method is as follows:

[0158]

[0159] In a nitrogen atmosphere, 100 mL of dry xylene, 3.4 g of compound XF01, 4.3 g of intermediate M1, Pd(dba)2 (bis(dibenzylideneacetonepalladium, 0.0575 g, 0.0001 mol), 10% tri-tert-butylphosphine toluene solution (the mass of tri-tert-butylphosphine solution is 0.4 g, and the amount of tri-tert-butylphosphine is 0.0002 mol) and sodium tert-butoxide (1.44 g, 0.015 mol) were added to a three-necked flask, heated to reflux, reacted for 8 h, cooled to room temperature, divided by adding water, and then the organic layer was washed with water until neutral, dried with magnesium sulfate, filtered to remove magnesium sulfate, concentrated to dryness, separated by silica gel column chromatography, and eluted with a solvent of petroleum ether: dichloromethane = 10:1 (volume ratio) to obtain compound P1 (5.0 g).

[0160] The mass spectrometry detection of compound P1: the mass-to-charge ratio (m / z) was measured to be 730.26.

[0161] Synthesis Example 2-9

[0162] Synthesis Examples 2-9 respectively provide a compound and a synthesis method thereof. The synthesis method refers to the preparation method of compound P1, and raw material 1 and raw material 2 are reacted to prepare the corresponding compound, and the mass spectrum of the prepared compound is measured and m / z is recorded. Details are shown in Table 1 below.

[0163] Table 1

[0164]

[0165]

[0166] Other compounds whose specific synthesis methods are not listed can be synthesized by referring to the above embodiments in combination with common knowledge in the art.

[0167] The specific structures of some compositions used in the following application examples and comparative application examples are as follows:

[0168]

[0169]

[0170]

[0171] Application Example 1

[0172] This application example provides a blue light organic electroluminescent device, using the compound provided by the present invention as a main material of the light-emitting layer, and the structure of the blue light organic electroluminescent device is:

[0173] ITO / HT-1: HI-2 [5%] (80nm) / HT-1 (30nm) / host material: PBD-1 [5%] (35nm) / ETL-1 (25nm) / LiF (0.5nm) / Al (150nm).

[0174] The preparation method of the blue light organic electroluminescent device is as follows:

[0175] The material was placed in a vacuum chamber and evacuated to 1×10 -5 ~1×10 -6 Pa was vacuum evaporated onto the cleaned ITO substrate in sequence to prepare an OLED device.

[0176] Among them, PBD-1[5%] refers to the doping ratio of the dye, that is, the volume ratio of the main material to the dye PBD-1 is 95:5; HT-1:HI-2[5%] refers to the ratio of the P-type dopant, that is, the volume ratio of the hole material HT-1 and the P-type dopant HI-2 is 95:5. HT-1 is a hole transport material; HT-1:HI-2[5%] is used as a hole injection layer.

[0177] The main material of the light-emitting layer of the blue light organic electroluminescent device provided in this application example is compound P1.

[0178] Application Example 2-9

[0179] Application Examples 2-9 each provide a blue light organic electroluminescent device, which differs from Application Example 1 only in that the main material compound P1 of the light-emitting layer is replaced with other compounds (see Table 2 for details), and the other preparation steps and conditions are the same as those of Application Example 1.

[0180] Comparative Application Example 1-2

[0181] Comparative Application Examples 1-2 respectively provide an organic electroluminescent device, which differs from Application Example 1 only in that the main material compound P1 of the light-emitting layer is replaced by other compounds (see Table 2 for details), and the other preparation steps and conditions are the same as those of Application Example 1.

[0182] Performance Testing

[0183] The brightness, driving voltage, current efficiency and LT95 of the organic electroluminescent device provided above were tested, wherein the voltage and current efficiency were the brightness of 1000 cd / m 2 The corresponding value, LT95, refers to maintaining the initial current density of the device at 10mA / cm 2 The time required for the device efficiency to drop to 95% of the efficiency corresponding to the initial current density, where the driving voltage, current efficiency and LT95 are relative values. The specific test results are shown in Table 2:

[0184] Table 2

[0185]

[0186]

[0187] In the present invention, the structure of the triazine compound containing carbazole is designed to make it suitable as the main material of the light-emitting layer of the organic electroluminescent device, so that the organic electroluminescent device has higher current efficiency, longer life and lower driving voltage.

[0188] According to the structure of compound P1 in Application Example 1, the group at the corresponding position of R3 in compound P1 is selected from the group of formula I-1, and R1, R2, and R4 are selected from H. Thus, the triazine compound containing a carbazole group is used as the main material of the light-emitting layer of the organic electroluminescent device, and the prepared organic electroluminescent device has a good current efficiency.

[0189] According to the structure of compound P6 in Application Example 6, R2 in compound P6 is selected from the group of formula I-1, and R1, R3, and R4 are selected from H. Thus, the triazine compound containing a carbazole group is used as the main material of the light-emitting layer of the organic electroluminescent device. The prepared organic electroluminescent device has a lower driving voltage and a longer life.

[0190] From the comparison between Application Example 1 and Application Example 7, it can be seen that in the compound P1 in Application Example 1, one of R1, R2, R3, and R4 is selected from the group of formula I-1, and thus the triazine compound containing a carbazole group is used as the main material of the light-emitting layer of the organic electroluminescent device, and the current efficiency and life performance of the prepared organic electroluminescent device are both good; in the compound P7 in Application Example 7, one of R1, R2, R3, and R4 is selected from the group of formula I-2, and thus the triazine compound containing a carbazole group is used as the main material of the light-emitting layer of the organic electroluminescent device, and the driving voltage of the prepared organic electroluminescent device is lower.

[0191] The applicant declares that the present invention illustrates the detailed process flow of the present invention through the above-mentioned embodiments, but the present invention is not limited to the above-mentioned detailed process flow, that is, it does not mean that the present invention must rely on the above-mentioned detailed process flow to be implemented. Those skilled in the art should understand that any improvement of the present invention, equivalent replacement of various raw materials of the product of the present invention, addition of auxiliary components, selection of specific methods, etc., all fall within the protection scope and disclosure scope of the present invention.

Claims

1. A triazine compound containing a carbazole group, characterized in that: The triazine compound containing a carbazole group has a structure shown in the following formula I: Wherein, Ar1 and Ar2 are each independently selected from any one of C6-C40 aryl or C6-C30 heteroaryl; At least one of R1, R2, R3, and R4 is selected from any one of the groups represented by formula I-1 or the groups represented by formula I-2, and the others are selected from H; The hydrogen atoms in the compound of formula I may be independently substituted by at least one of a deuterium atom, -F, -CN, a C6-C20 aryl group, a C1-C12 alkyl group or a C1-C12 alkoxy group.

2. The triazine compound containing a carbazole group according to claim 1, characterized in that: The C6-C40 aryl group is selected from any one of phenyl, biphenyl, terphenyl, naphthyl, naphthylphenyl, anthracenyl, phenanthryl, fluorenyl, benzofluorenyl, dibenzofluorenyl, naphthofluorenyl, pyrenyl, peryl, spirofluorenyl, triphenylene, fluoranthenyl, hydrogenated benzanthryl, indenofluorenyl, benzoindenofluorenyl, dibenzoindenofluorenyl, naphthofluorenyl or benzonaphthofluorenyl; Preferably, the C6-C30 heteroaryl group is selected from any one of carbazolyl, dibenzofuranyl, dibenzothiophenyl, naphthobenzofuranyl, naphthobenzothiophenyl, dinaphthofuranyl and dinaphthothiophenyl; Preferably, the C6-C20 aryl group is selected from any one of phenyl, biphenyl, terphenyl, naphthyl, anthracenyl, phenanthryl, fluorenyl, triphenylene, and fluoranthenyl; Preferably, the C1-C12 alkyl group is selected from any one of methyl, ethyl, propyl, butyl, pentyl, hexyl, octyl or decyl; Preferably, the C1-C12 alkoxy group is selected from any one of methoxy, ethoxy, propoxy, butoxy, pentyloxy or hexyloxy.

3. The triazine compound containing a carbazole group according to claim 1 or 2, characterized in that: The Ar1 and Ar2 are each independently selected from any one of phenyl, carbazolyl, biphenyl, fluorenyl, naphthyl, triphenylene, fluoranthene, indenofluorenyl, dibenzofuranyl, dibenzothienyl, naphthiobenzofuranyl or naphthiobenzothienyl, preferably any one of phenyl, naphthyl, biphenyl, dibenzofuranyl, dibenzothienyl, fluorenyl and carbazolyl.

4. The triazine compound containing a carbazole group according to any one of claims 1 to 3, characterized in that: Any one of R1, R2, R3, and R4 is selected from any one of the groups shown in Formula I-1 or the groups shown in Formula I-2, and the others are selected from H; Preferably, any one of R2 and R3 is selected from any one of the groups shown in formula I-1 or the groups shown in formula I-2, and the others are selected from H; Preferably, the R2 is selected from any one of the groups shown in formula I-1 or the groups shown in formula I-2, and the R1, R3, and R4 are selected from H; Preferably, the R3 is selected from any one of the groups shown in formula I-1 or the groups shown in formula I-2, and the R1, R2, and R4 are selected from H.

5. The triazine compound containing a carbazole group according to any one of claims 1 to 4, characterized in that: The hydrogen atoms in the compound of formula I may each independently be substituted by at least one of -D, -F, -CN, phenyl, naphthyl, biphenyl, methyl, ethyl, propyl, butyl, methoxy, ethoxy, propoxy or butoxy; Preferably, the hydrogen atoms in the compound of formula I can be independently substituted by at least one of -D, methyl, -F, -CN, methyl, and tert-butyl, methoxy, ethoxy, phenyl, and naphthyl.

6. The triazine compound containing a carbazole group according to any one of claims 1 to 5, characterized in that: The triazine compound containing a carbazole group is selected from any one of the following substituted or unsubstituted compounds: The substitution means that the hydrogen atoms in the triazine compound containing a carbazole group can be independently substituted by deuterium atoms.

7. An intermediate, characterized in that The intermediates include the following compounds: The intermediate is used to prepare the triazine compound containing a carbazole group as claimed in any one of claims 1 to 6.

8. An organic electroluminescent device, characterized in that: The organic electroluminescent device comprises an anode, a cathode and an organic thin film layer arranged between the anode and the cathode; The organic thin film layer comprises the triazine compound containing a carbazole group as claimed in any one of claims 1 to 6.

9. The organic electroluminescent device according to claim 8, characterized in that: The organic thin film layer comprises a light-emitting layer, and a main material of the light-emitting layer comprises the triazine compound containing a carbazole group according to any one of claims 1 to 6.

10. The organic electroluminescent device according to claim 8 or 9, characterized in that: The light-emitting layer is a phosphorescent light-emitting layer; Preferably, the organic electroluminescent device is a blue organic electroluminescent device.