Nitrogen-containing compounds and organic electroluminescent devices and electronic devices

By using nitrogen-containing compounds as functional layer materials in organic electroluminescent devices, carrier balance is improved, device life and efficiency problems are solved, and luminous efficiency and life are improved.

CN117800959BActive Publication Date: 2025-09-02SHAANXI LIGHTE OPTOELECTRONICS MATERIAL CO LTD
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Patent Information

Application Number
CN202211157559.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-09-22
Publication Date
2025-09-02
Estimated Expiration
2042-09-22

AI Technical Summary

Technical Problem

The existing organic electroluminescent devices have life and efficiency problems in large-area displays, with high driving voltage and luminous efficiency and current efficiency need to be improved.

Method used

A nitrogen-containing compound is used as the functional layer material, including benzophenylazole/thiazole parent nucleus connecting triazine/pyrimidine and aromatic amine compounds, as electron-transport and hole-transport host materials, to improve carrier mobility and exciton generation efficiency.

Benefits of technology

The luminescence efficiency and lifetime of organic electroluminescent devices are improved, the carrier composite region is widened, and the exciton generation and utilization efficiency is enhanced.

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Abstract

This application relates to the technical field of organic electroluminescent materials and provides a nitrogen-containing compound, an organic electroluminescent device, and an electronic device containing the same. The nitrogen-containing compound of the present application comprises a parent core structure of a benzophenanthrene oxazole / thiazole group. When used as the host material of the light-emitting layer of an organic electroluminescent device, the nitrogen-containing compound can significantly improve the luminous efficiency and service life of the device.
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Description

Technical Field

[0001] The present application relates to the technical field of organic electroluminescent materials, and in particular to nitrogen-containing compounds and organic electroluminescent devices and electronic devices containing the same. Background Art

[0002] With the development of electronic technology and the progress of materials science, the application scope of electronic components for realizing electroluminescence or photoelectric conversion is becoming more and more extensive. Organic electroluminescent devices (OLEDs) generally include a cathode and an anode arranged relatively to each other, and a functional layer arranged between the cathode and the anode. The functional layer is composed of multiple organic or inorganic film layers, and generally includes an organic light-emitting layer, a hole transport layer, an electron transport layer, etc. When a voltage is applied to the anode and the cathode, the two electrodes generate an electric field. Under the action of the electric field, the electrons on the cathode side move toward the electroluminescent layer, and the holes on the anode side also move toward the light-emitting layer. The electrons and holes combine in the electroluminescent layer to form excitons. The excitons are in an excited state and release energy outward, thereby causing the electroluminescent layer to emit light outward.

[0003] The main problems with existing organic electroluminescent devices are lifespan and efficiency. As displays become larger, the driving voltage also increases, and the luminous efficiency and current efficiency also need to be improved. Therefore, it is necessary to continue to develop new materials to further improve the performance of organic electroluminescent devices. Summary of the Invention

[0004] In view of the above problems existing in the prior art, the purpose of the present application is to provide a nitrogen-containing compound and an electronic component and an electronic device containing the same. The nitrogen-containing compound is used in an organic electroluminescent device to improve the performance of the device.

[0005] According to a first aspect of the present application, a nitrogen-containing compound is provided, wherein the nitrogen-containing compound has a structure represented by Formula 1:

[0006]

[0007] Wherein, group A is selected from formula A-1 or A-2

[0008]

[0009] One of X and Y is -N=, and the other is O or S;

[0010] Z1, Z2 and Z3 are selected from C(R1) or N, and at least two of Z1, Z2 and Z3 are N;

[0011] L, L1, L2, L3 and L4 are the same or different and are each independently selected from a single bond, a substituted or unsubstituted arylene group having 6 to 30 carbon atoms, or a substituted or unsubstituted heteroarylene group having 3 to 30 carbon atoms;

[0012] Ar, Ar1, Ar2, Ar3 or Ar4 are the same or different and are each independently selected from a substituted or unsubstituted aryl group having 6 to 40 carbon atoms, or a substituted or unsubstituted heteroaryl group having 3 to 40 carbon atoms;

[0013] The substituents in L, L1, L2, L3, L4, Ar, Ar1, Ar2, Ar3 and Ar4 are the same or different and are each independently selected from deuterium, cyano, a halogen group, an alkyl group having 1 to 10 carbon atoms, a haloalkyl group having 1 to 10 carbon atoms, a deuterated alkyl group having 1 to 10 carbon atoms, a trialkylsilyl group having 3 to 12 carbon atoms, a triphenylsilyl group, an aryl group having 6 to 20 carbon atoms, a deuterated aryl group having 6 to 20 carbon atoms, a heteroaryl group having 3 to 20 carbon atoms, a cycloalkyl group having 3 to 10 carbon atoms, an alkoxy group having 1 to 10 carbon atoms, an alkylthio group having 1 to 10 carbon atoms, an aryloxy group having 6 to 20 carbon atoms or an arylthio group having 6 to 20 carbon atoms; optionally, any two adjacent substituents form a ring;

[0014] Each R1, R2 and R3 is the same or different and is independently selected from hydrogen, deuterium, cyano, a halogen group, an alkyl group having 1 to 10 carbon atoms, a haloalkyl group having 1 to 10 carbon atoms, a deuterated alkyl group having 1 to 10 carbon atoms, a trialkylsilyl group having 3 to 12 carbon atoms, a triphenylsilyl group, an aryl group having 6 to 20 carbon atoms, a heteroaryl group having 3 to 20 carbon atoms or a cycloalkyl group having 3 to 10 carbon atoms; n1 and n2 are each independently selected from 0, 1 or 2, and n3 is selected from 0, 1, 2, 3, 4, 5 or 6.

[0015] According to a second aspect of the present application, an organic electroluminescent device is provided, comprising an anode and a cathode arranged opposite to each other, and a functional layer arranged between the anode and the cathode; the functional layer comprises the nitrogen-containing compound described above.

[0016] According to a third aspect of the present application, an electronic device is provided, comprising the organic electroluminescent device according to the second aspect.

[0017] The compound structure of the present application contains triphenylene oxazole / thiazole, wherein the triphenylene oxazole / thiazole has a large conjugated system and strong intermolecular forces, which can improve the carrier mobility of the compound. This parent core is connected to triazine / pyrimidine and aromatic amine compounds, respectively, as electron-transporting and hole-transporting host materials, respectively, both of which can improve the carrier balance in the light-emitting layer, broaden the carrier recombination area, enhance the efficiency of exciton generation and utilization, and improve the luminous efficiency and life of the device. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] The accompanying drawings are used to provide further understanding of the present application and constitute a part of the specification. Together with the following specific embodiments, they are used to explain the present application, but do not constitute a limitation to the present application.

[0019] Figure 1 It is a schematic structural diagram of an organic electroluminescent device according to one embodiment of the present application.

[0020] Figure 2 It is a schematic structural diagram of an electronic device according to one embodiment of the present application.

[0021] Reference numerals

[0022] 100, anode 200, cathode 300, functional layer 310, hole injection layer

[0023] 321, first hole transport layer 322, second hole transport layer 330, organic light emitting layer 340, electron transport layer

[0024] 350, electron injection layer 400, electronic device DETAILED DESCRIPTION

[0025] The exemplary embodiments will now be described more fully with reference to the accompanying drawings. However, the exemplary embodiments can be implemented in a variety of forms and should not be construed as limited to the examples set forth herein; rather, these embodiments are provided so that this application will be more comprehensive and complete and will fully convey the concepts of the exemplary embodiments to those skilled in the art. The described features, structures, or characteristics may be combined in any suitable manner in one or more embodiments. In the following description, numerous specific details are provided to provide a full understanding of the embodiments of the present application.

[0026] In a first aspect, the present application provides a nitrogen-containing compound having a structure shown in Formula 1:

[0027]

[0028] Wherein, group A is selected from formula A-1 or A-2

[0029]

[0030] One of X and Y is -N=, and the other is O or S;

[0031] Z1, Z2 and Z3 are selected from C(R1) or N, and at least two of Z1, Z2 and Z3 are N;

[0032] L, L1, L2, L3 and L4 are the same or different and are each independently selected from a single bond, a substituted or unsubstituted arylene group having 6 to 30 carbon atoms, or a substituted or unsubstituted heteroarylene group having 3 to 30 carbon atoms;

[0033] Ar, Ar1, Ar2, Ar3 or Ar4 are the same or different and are each independently selected from a substituted or unsubstituted aryl group having 6 to 40 carbon atoms, or a substituted or unsubstituted heteroaryl group having 3 to 40 carbon atoms;

[0034] The substituents in L, L1, L2, L3, L4, Ar, Ar1, Ar2, Ar3 and Ar4 are the same or different and are each independently selected from deuterium, cyano, a halogen group, an alkyl group having 1 to 10 carbon atoms, a haloalkyl group having 1 to 10 carbon atoms, a deuterated alkyl group having 1 to 10 carbon atoms, a trialkylsilyl group having 3 to 12 carbon atoms, a triphenylsilyl group, an aryl group having 6 to 20 carbon atoms, a deuterated aryl group having 6 to 20 carbon atoms, a heteroaryl group having 3 to 20 carbon atoms, a cycloalkyl group having 3 to 10 carbon atoms, an alkoxy group having 1 to 10 carbon atoms, an alkylthio group having 1 to 10 carbon atoms, an aryloxy group having 6 to 20 carbon atoms or an arylthio group having 6 to 20 carbon atoms; optionally, any two adjacent substituents form a ring;

[0035] Each R1, R2 and R3 is the same or different and is independently selected from hydrogen, deuterium, cyano, a halogen group, an alkyl group having 1 to 10 carbon atoms, a haloalkyl group having 1 to 10 carbon atoms, a deuterated alkyl group having 1 to 10 carbon atoms, a trialkylsilyl group having 3 to 12 carbon atoms, a triphenylsilyl group, an aryl group having 6 to 20 carbon atoms, a heteroaryl group having 3 to 20 carbon atoms or a cycloalkyl group having 3 to 10 carbon atoms; n1 and n2 are each independently selected from 0, 1 or 2, and n3 is selected from 0, 1, 2, 3, 4, 5 or 6.

[0036] In this application, the terms "optionally" and "optionally" mean that the event or environment described subsequently may or may not occur. For example, "optionally, any two adjacent substituents form a ring" means that the two substituents may or may not form a ring, that is, it includes: the scenario where two adjacent substituents form a ring and the scenario where two adjacent substituents do not form a ring. For another example, "optionally, any two adjacent substituents form a ring" means that any two adjacent substituents are connected to each other to form a ring, or any two adjacent substituents may also exist independently. "Any two adjacent" may include two substituents on the same atom, and may also include one substituent on each of two adjacent atoms; wherein, when there are two substituents on the same atom, the two substituents may form a saturated or unsaturated spirocycle with the atom to which they are commonly connected; when there is one substituent on each of two adjacent atoms, the two substituents may be fused into a ring.

[0037] In this application, the descriptions “each independently is”, “each independently is” and “each independently is” are interchangeable and should be understood in a broad sense. They can mean that in different groups, the specific options expressed by the same symbols do not affect each other, or in the same group, the specific options expressed by the same symbols do not affect each other. For example, Wherein, each q is independently 0, 1, 2 or 3, and each R" is independently selected from hydrogen, deuterium, fluorine, and chlorine. The meaning is: Formula Q-1 represents that there are q substituents R" on the benzene ring, and each R" can be the same or different, and the options of each R" do not affect each other; Formula Q-2 represents that there are q substituents R" on each benzene ring of biphenyl, and the number q of R" substituents on the two benzene rings can be the same or different, and each R" can be the same or different, and the options of each R" do not affect each other.

[0038] In this application, the term "substituted or unsubstituted" means that the functional group described after the term may or may not have a substituent (hereinafter, for ease of description, the substituents are collectively referred to as Rc). For example, "substituted or unsubstituted aryl" refers to an aryl group having a substituent Rc or an unsubstituted aryl group. The substituent Rc can be, for example, deuterium, a halogen group, a cyano group, a heteroaryl group, an aryl group, a trialkylsilyl group, an alkyl group, a haloalkyl group, a cycloalkyl group, etc. The number of substitutions can be one or more.

[0039] In this application, "plurality" refers to two or more, for example, 2, 3, 4, 5, 6, etc.

[0040] The hydrogen atoms in the structures of the compounds of the present application include various isotope atoms of the hydrogen element, such as hydrogen (H), deuterium (D) or tritium (T).

[0041] In this application, the number of carbon atoms in a substituted or unsubstituted functional group refers to the total number of carbon atoms. For example, if L1 is a substituted arylene group with 12 carbon atoms, the total number of carbon atoms in the arylene group and its substituents is 12.

[0042] In the present application, aryl refers to an optional functional group or substituent derived from an aromatic carbocyclic ring. Aryl can be a monocyclic aryl (such as phenyl) or a polycyclic aryl. In other words, aryl can be a monocyclic aryl, a condensed ring aryl, two or more monocyclic aryl groups connected by carbon-carbon bond conjugation, a monocyclic aryl and a condensed ring aryl connected by carbon-carbon bond conjugation, two or more condensed ring aryl groups connected by carbon-carbon bond conjugation. That is, unless otherwise indicated, two or more aromatic groups connected by carbon-carbon bond conjugation can also be considered as aryl of the present application. Wherein, condensed ring aryl, for example, can include bicyclic condensed aryl (such as naphthyl), tricyclic condensed aryl (such as phenanthrenyl, fluorenyl, anthracenyl) etc. Aryl does not contain heteroatoms such as B, N, O, S, P, Se and Si. Examples of aryl groups may include, but are not limited to, phenyl, naphthyl, fluorenyl, spirobifluorenyl, anthracenyl, phenanthrenyl, biphenyl, terphenyl, triphenylene, peryl, benzo[9,10]phenanthrenyl, pyrenyl, benzofluoranthenyl, Ji et al.

[0043] In the present application, the arylene group refers to a divalent or multivalent group formed by further losing one or more hydrogen atoms from an aryl group.

[0044] In this application, terphenyl includes

[0045] In the present application, the number of carbon atoms of a substituted aryl group refers to the total number of carbon atoms of the aryl group and the substituents on the aryl group. For example, a substituted aryl group with 18 carbon atoms refers to the total number of carbon atoms of the aryl group and the substituents being 18.

[0046] In the present application, the number of carbon atoms of the substituted or unsubstituted aryl (arylene) group can be 6, 8, 10, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 28, 30, 31, 33, 34, 35, 36, 38 or 40, etc. In some embodiments, the substituted or unsubstituted aryl group is a substituted or unsubstituted aryl group having 6 to 40 carbon atoms, in other embodiments, the substituted or unsubstituted aryl group is a substituted or unsubstituted aryl group having 6 to 30 carbon atoms, in other embodiments, the substituted or unsubstituted aryl group is a substituted or unsubstituted aryl group having 6 to 25 carbon atoms, and in other embodiments, the substituted or unsubstituted aryl group is a substituted or unsubstituted aryl group having 6 to 15 carbon atoms.

[0047] In the present application, the fluorenyl group may be substituted by one or more substituents. In the case where the fluorenyl group is substituted, the substituted fluorenyl group may be: etc., but not limited thereto.

[0048] In the present application, the aromatic groups as substituents of L, L1, L2, L3, L4, Ar, Ar1, Ar2, Ar3 and Ar4 include, but are not limited to, phenyl, naphthyl, phenanthrenyl, biphenyl, fluorenyl, dimethylfluorenyl and the like.

[0049] In the present application, a heteroaryl group refers to a monovalent aromatic ring or a derivative thereof containing 1, 2, 3, 4, 5 or 6 heteroatoms in the ring, wherein the heteroatoms may be one or more of B, O, N, P, Si, Se and S. A heteroaryl group may be a monocyclic heteroaryl group or a polycyclic heteroaryl group. In other words, a heteroaryl group may be a single aromatic ring system or a plurality of aromatic ring systems connected by conjugated carbon-carbon bonds, and any aromatic ring system may be an aromatic monocyclic ring or an aromatic condensed ring. For example, the heteroaryl group may include a thienyl group, a furyl group, a pyrrolyl group, an imidazolyl group, a thiazolyl group, an oxazolyl group, an oxadiazolyl group, a triazolyl group, a pyridyl group, a bipyridyl group, a pyrimidyl group, a triazinyl group, an acridinyl group, a pyridazinyl group, a pyrazinyl group, a quinolyl group, a quinazolinyl group, a quinoxalinyl group, a phenoxazinyl group, a phthalazinyl group, a pyridopyrimidinyl group, a pyridopyrazinyl group, a pyrazinopyrazinyl group, an isoquinolyl group, an indolyl group, a carbazolyl group, a benzoxazolyl group, a benzimidazolyl group, a benzothiazolyl group, a benzocarbazolyl group, a benzothienyl group, a dibenzothienyl group, a thienothiphenyl group, a benzofuranyl group, a phenanthrolinyl group, an isoxazolyl group, a thiadiazolyl group, a phenothiazinyl group, a silafluorenyl group, a dibenzofuranyl group, and an N-phenylcarbazolyl group, an N-pyridylcarbazolyl group, an N-methylcarbazolyl group, and the like, without being limited thereto.

[0050] In the present application, the heteroarylene group refers to a divalent or multivalent group formed by further losing one or more hydrogen atoms from a heteroaryl group.

[0051] In the present application, the number of carbon atoms of the substituted or unsubstituted heteroaryl (heteroarylene) can be selected from 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39 or 40, etc. In some embodiments, the substituted or unsubstituted heteroaryl is a substituted or unsubstituted heteroaryl having a total carbon number of 3 to 40, in other embodiments, the substituted or unsubstituted heteroaryl is a substituted or unsubstituted heteroaryl having a total carbon number of 3 to 30, and in other embodiments, the substituted or unsubstituted heteroaryl is a substituted or unsubstituted heteroaryl having a total carbon number of 5 to 12.

[0052] In the present application, the heteroaryl groups as substituents of L, L1, L2, L3, L4, Ar, Ar1, Ar2, Ar3 and Ar4 are exemplified by, but not limited to, pyridyl, carbazolyl, quinolyl, isoquinolyl, phenanthroline, benzoxazolyl, benzothiazolyl, benzimidazolyl, dibenzothiophenyl and dibenzofuranyl.

[0053] In the present application, a substituted heteroaryl group may be a heteroaryl group in which one or more hydrogen atoms are replaced by groups such as a deuterium atom, a halogen group, -CN, an aryl group, a heteroaryl group, a trialkylsilyl group, an alkyl group, a cycloalkyl group, a haloalkyl group, etc. It should be understood that the number of carbon atoms in the substituted heteroaryl group refers to the total number of carbon atoms in the heteroaryl group and the substituents on the heteroaryl group.

[0054] In the present application, the alkyl group having 1 to 10 carbon atoms may include a straight-chain alkyl group having 1 to 10 carbon atoms and a branched-chain alkyl group having 3 to 10 carbon atoms. The number of carbon atoms in the alkyl group may be, for example, 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10. Specific examples of the alkyl group include, but are not limited to, methyl, ethyl, n-propyl, isopropyl, n-butyl, isobutyl, tert-butyl, n-pentyl, isopentyl, neopentyl, and n-hexyl.

[0055] In the present application, the halogen group may be, for example, fluorine, chlorine, bromine, or iodine.

[0056] In the present application, specific examples of trialkylsilyl include, but are not limited to, trimethylsilyl, triethylsilyl, and the like.

[0057] In the present application, specific examples of haloalkyl include, but are not limited to, trifluoromethyl.

[0058] In the present application, the number of carbon atoms in the cycloalkyl group having 3 to 10 carbon atoms may be, for example, 3, 4, 5, 6, 7, 8 or 10. Specific examples of the cycloalkyl group include, but are not limited to, cyclopentyl, cyclohexyl, and adamantyl.

[0059] In this application, no single bond extending from the ring system is involved in the positioning of the connecting bond. This means that one end of the link can be connected to any position in the ring system that the link passes through, and the other end is connected to the rest of the compound molecule. For example, as shown in the following formula (f), the naphthyl represented by formula (f) is connected to other positions of the molecule via two non-positional linkers that pass through the bicyclic ring. The meaning of this includes any possible connection method shown in formulas (f-1) to (f-10):

[0060]

[0061] For example, as shown in the following formula (X'), the dibenzofuranyl group represented by formula (X') is connected to other positions of the molecule through a non-positional connecting bond extending from the middle of one benzene ring. The meaning represented by it includes any possible connection method shown in formulas (X'-1) to (X'-4):

[0062]

[0063] A non-positional substituent herein refers to a substituent connected via a single bond extending from the center of the ring system, indicating that the substituent can be attached at any possible position within the ring system. For example, as shown in the following formula (Y), the substituent R' represented by formula (Y) is connected to the quinoline ring via a non-positional bond, and its meaning includes any possible connection method shown in formulas (Y-1) to (Y-7):

[0064]

[0065] In some embodiments, the compound of formula 1 is selected from the following structures represented by formulas (1-1) to (1-16):

[0066]

[0067]

[0068] In some embodiments, Z1 and Z3 are N, and Z2 is selected from C(H) or N; or Z1 and Z2 are N, and Z3 is selected from C(H) or N; or Z1, Z2 and Z3 are all N.

[0069] In some embodiments, Ar, Ar1, Ar2, Ar3 and Ar4 are the same or different and are each independently selected from substituted or unsubstituted aryl groups having 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24 or 25 carbon atoms, and substituted or unsubstituted heteroaryl groups having 5, 6, 7, 8, 9, 10, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23 or 24 carbon atoms.

[0070] In some embodiments, Ar, Ar1, Ar2, Ar3 and Ar4 are the same or different and are each independently selected from a substituted or unsubstituted aryl group having 6 to 25 carbon atoms, or a substituted or unsubstituted heteroaryl group having 5 to 24 carbon atoms.

[0071] In some embodiments, the substituents in Ar, Ar1, Ar2, Ar3 and Ar4 are each independently selected from deuterium, a halogen group, a cyano group, a haloalkyl group having 1 to 4 carbon atoms, a deuterated alkyl group having 1 to 4 carbon atoms, an alkyl group having 1 to 4 carbon atoms, a cycloalkyl group having 5 to 10 carbon atoms, an aryl group having 6 to 15 carbon atoms, a heteroaryl group having 5 to 12 carbon atoms, a trialkylsilyl group having 3 to 8 carbon atoms or a deuterated aryl group having 6 to 15 carbon atoms, and optionally, any two adjacent substituents form a benzene ring or a fluorene ring.

[0072] In some embodiments, Ar, Ar1, Ar2, Ar3 and Ar4 are each independently selected from substituted or unsubstituted phenyl, substituted or unsubstituted biphenyl, substituted or unsubstituted terphenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted anthracenyl, substituted or unsubstituted phenanthrenyl, substituted or unsubstituted fluorenyl, substituted or unsubstituted spirobifluorenyl, substituted or unsubstituted triphenylene, substituted or unsubstituted pyrenyl, substituted or unsubstituted peryl, substituted or unsubstituted pyridyl, substituted or unsubstituted dibenzothiophenyl, substituted or unsubstituted dibenzofuranyl, substituted or unsubstituted carbazolyl, substituted or unsubstituted benzothiazolyl, substituted or unsubstituted benzoxazolyl, substituted or unsubstituted benzimidazolyl.

[0073] Optionally, the substituents in Ar, Ar1, Ar2, Ar3 and Ar4 are each independently selected from deuterium, fluorine, cyano, trideuteromethyl, trimethylsilyl, trifluoromethyl, cyclopentyl, cyclohexyl, adamantyl, methyl, ethyl, isopropyl, tert-butyl, phenyl, naphthyl, pyridyl, dibenzofuranyl, dibenzothienyl or carbazolyl, and optionally, in Ar1 and Ar2, any two adjacent substituents form a benzene ring or a fluorene ring.

[0074] In some embodiments, Ar, Ar1, Ar2, Ar3 and Ar4 are each independently selected from a substituted or unsubstituted group W; wherein the unsubstituted group W is selected from the group consisting of:

[0075]

[0076]

[0077] The substituted group W has one or more substituents, and the substituents of the substituted group W are each independently selected from deuterium, fluorine, cyano, trideuteromethyl, trimethylsilyl, trifluoromethyl, cyclopentyl, cyclohexyl, adamantyl, methyl, ethyl, isopropyl, tert-butyl, phenyl, naphthyl, pyridyl, dibenzofuranyl, dibenzothienyl or carbazolyl, and when the number of substituents on the group W is greater than 1, the substituents are the same or different.

[0078] In some embodiments, Ar1, Ar2, Ar3 or Ar4 are independently selected from the group consisting of:

[0079]

[0080] In some embodiments, Ar is selected from a substituted or unsubstituted aryl group having 6 to 18 carbon atoms and a substituted or unsubstituted heteroaryl group having 12 to 18 carbon atoms.

[0081] In some embodiments, Ar is selected from substituted or unsubstituted phenyl, substituted or unsubstituted biphenyl, substituted or unsubstituted terphenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted phenanthrenyl, substituted or unsubstituted fluorenyl, substituted or unsubstituted triphenylene, substituted or unsubstituted dibenzothiophenyl, substituted or unsubstituted dibenzofuranyl, substituted or unsubstituted carbazolyl.

[0082] Optionally, the substituents in Ar are each independently selected from deuterium, fluorine, cyano, trideuteromethyl, trimethylsilyl, trifluoromethyl, methyl, ethyl, isopropyl, tert-butyl, phenyl, naphthyl or deuterated phenyl.

[0083] In some embodiments, Ar is selected from the group consisting of:

[0084]

[0085] In some embodiments, L, L1, L2, L3 and L4 are the same or different and are each independently selected from a single bond, a substituted or unsubstituted arylene group having 6 to 15 carbon atoms, or a substituted or unsubstituted heteroarylene group having 12 to 18 carbon atoms.

[0086] In some embodiments, L, L1, L2, L3 and L4 are the same or different and are each independently selected from a single bond, a substituted or unsubstituted arylene group having 6, 7, 8, 9, 10, 11, 12, 13, 14 or 15 carbon atoms, or a substituted or unsubstituted heteroarylene group having 12, 13, 14, 15, 16, 17 or 18 carbon atoms.

[0087] Optionally, the substituents in L, L1, L2, L3 and L4 are each independently selected from deuterium, fluorine, cyano, an alkyl group having 1 to 5 carbon atoms, a trialkylsilyl group having 3 to 8 carbon atoms, a fluoroalkyl group having 1 to 4 carbon atoms, a deuterated alkyl group having 1 to 4 carbon atoms, a phenyl group or a naphthyl group.

[0088] In some embodiments, L, L1, L2, L3 and L4 are the same or different and are each independently selected from a single bond, a substituted or unsubstituted phenylene group, a substituted or unsubstituted naphthylene group, a substituted or unsubstituted biphenylene group, a substituted or unsubstituted dibenzothiophenylene group, a substituted or unsubstituted dibenzofuranylene group, a substituted or unsubstituted fluorenylene group, a substituted or unsubstituted phenanthrenylene group, or a substituted or unsubstituted carbazolylene group.

[0089] Optionally, the substituents in L, L1, L2, L3 and L4 are the same or different and are each independently selected from deuterium, fluorine, cyano, methyl, ethyl, isopropyl, tert-butyl, trifluoromethyl, trideuteromethyl, trimethylsilyl or phenyl.

[0090] In some embodiments, L is selected from the group consisting of a single bond or the following groups:

[0091]

[0092] In some embodiments, L1, L2, L3 and L4 are each independently selected from the group consisting of a single bond or the following groups:

[0093]

[0094] In some embodiments, Each is independently selected from the following groups:

[0095]

[0096]

[0097] In some embodiments, group A is selected from the following groups:

[0098]

[0099]

[0100] Optionally, each R1, R2 and R3 is the same or different and is independently selected from hydrogen, deuterium, cyano, fluorine, trideuteromethyl, trimethylsilyl, trifluoromethyl, methyl, ethyl, isopropyl, tert-butyl, phenyl, naphthyl, pyridyl, dibenzofuranyl, dibenzothiophenyl or carbazolyl.

[0101] Optionally, each of R1, R2 and R3 is the same or different and is independently selected from hydrogen, deuterium or cyano.

[0102] Optionally, the nitrogen-containing compound is selected from the group consisting of the following compounds:

[0103]

[0104]

[0105]

[0106]

[0107]

[0108]

[0109]

[0110]

[0111]

[0112]

[0113]

[0114]

[0115]

[0116]

[0117] In a second aspect of the present application, an organic electroluminescent device is provided, comprising an anode, a cathode, and a functional layer disposed between the anode and the cathode; wherein the functional layer comprises the nitrogen-containing compound described in the first aspect of the present application.

[0118] The nitrogen-containing compound provided in the present application can be used to form at least one organic film layer in the functional layer to improve the luminous efficiency, lifespan and other characteristics of the organic electroluminescent device.

[0119] Optionally, the functional layer includes an organic light-emitting layer, and the organic light-emitting layer includes the nitrogen-containing compound. The organic light-emitting layer can be composed of the nitrogen-containing compound provided in this application, or can be composed of the nitrogen-containing compound provided in this application and other materials.

[0120] According to a specific embodiment, the organic electroluminescent device is as follows Figure 1 As shown, the organic electroluminescent device may include an anode 100, a hole injection layer 310, a first hole transport layer 321, a second hole transport layer (hole auxiliary layer) 322, an organic light-emitting layer 330, an electron transport layer 340, an electron injection layer 350 and a cathode 200, which are stacked in sequence.

[0121] In the present application, the anode 100 includes an anode material, which is preferably a material with a large work function that facilitates hole injection into the functional layer. Specific examples of anode materials include: metals such as nickel, platinum, vanadium, chromium, copper, zinc, and gold or their alloys; metal oxides such as zinc oxide, indium oxide, indium tin oxide (ITO), and indium zinc oxide (IZO); combined metals and oxides such as ZnO:Al or SnO2:Sb; or conductive polymers such as poly(3-methylthiophene), poly[3,4-(ethylene-1,2-dioxy)thiophene] (PEDT), polypyrrole, and polyaniline, but are not limited thereto. Preferably, a transparent electrode comprising indium tin oxide (ITO) as an anode is included.

[0122] In the present application, the hole transport layer may include one or more hole transport materials. The hole transport layer material may be selected from carbazole polymers, carbazole-linked triarylamine compounds or other types of compounds, and may specifically be selected from the following compounds or any combination thereof:

[0123]

[0124] In one embodiment, the first hole transport layer 321 may be composed of α-NPD.

[0125] In one embodiment, the second hole transport layer 322 is composed of HT-1.

[0126] Optionally, a hole injection layer 310 is provided between the anode 100 and the first hole transport layer 321 to enhance the ability to inject holes into the first hole transport layer 321. The hole injection layer 310 may be made of a benzidine derivative, a starburst arylamine compound, a phthalocyanine derivative, or other materials, and this application does not impose any particular limitation thereto. The material of the hole injection layer 310 is, for example, selected from the following compounds or any combination thereof:

[0127]

[0128]

[0129] In one embodiment, the hole injection layer 310 is composed of PD.

[0130] In the present application, the organic light-emitting layer 330 may be composed of a single light-emitting material or may include a host material and a guest material. Optionally, the organic light-emitting layer 330 is composed of a host material and a guest material. Holes and electrons injected into the organic light-emitting layer 330 may recombine in the organic light-emitting layer 330 to form excitons. The excitons transfer energy to the host material, and the host material transfers energy to the guest material, thereby enabling the guest material to emit light.

[0131] The host material of the organic light-emitting layer 330 may include metal chelate compounds, bisphenylethylene derivatives, aromatic amine derivatives, dibenzofuran derivatives, or other types of materials. Optionally, the host material includes the nitrogen-containing compound of the present application.

[0132] The guest material of the organic light-emitting layer 330 can be a compound having a condensed aromatic ring or its derivative, a compound having a heteroaromatic ring or its derivative, an aromatic amine derivative or other materials, and this application does not impose any special restrictions on this. The guest material is also called a doping material or dopant. According to the type of luminescence, it can be divided into fluorescent dopants and phosphorescent dopants. Specific examples of the phosphorescent dopant include, but are not limited to,

[0133]

[0134] In one embodiment of the present application, the organic electroluminescent device is a red organic electroluminescent device. In one embodiment, the host material of the organic light-emitting layer 330 comprises the nitrogen-containing compound of the present application. The guest material is, for example, RD.

[0135] In one embodiment, the main material of the organic light emitting layer 330 comprises the nitrogen-containing compound of the present application and In another embodiment, the main material of the organic light emitting layer 330 comprises the nitrogen-containing compound of the present application and

[0136] In one embodiment of the present application, the organic electroluminescent device is a green organic electroluminescent device. In a more specific embodiment, the host material of the organic light-emitting layer 330 comprises the nitrogen-containing compound of the present application.

[0137] The electron transport layer 340 may be a single-layer structure or a multi-layer structure, and may include one or more electron transport materials. The electron transport materials may be selected from, but not limited to, BTB, LiQ, benzimidazole derivatives, oxadiazole derivatives, quinoxaline derivatives, or other electron transport materials, and are not specifically limited in this application. The materials of the electron transport layer 340 include, but are not limited to, the following compounds:

[0138]

[0139] In one embodiment of the present application, the electron transport layer 340 may be composed of ET-1 and LiQ, or composed of ET-2 and LiQ.

[0140] In the present application, cathode 200 may include a cathode material having a small work function that facilitates electron injection into the functional layer. Specific examples of cathode materials include, but are not limited to, metals such as magnesium, calcium, sodium, potassium, titanium, indium, yttrium, lithium, gadolinium, aluminum, silver, tin, and lead, or alloys thereof; or multilayer materials such as LiF / Al, Liq / Al, LiO2 / Al, LiF / Ca, LiF / Al, and BaF2 / Ca. Alternatively, a metal electrode containing magnesium and silver may be included as the cathode.

[0141] Optionally, an electron injection layer 350 is further provided between the cathode 200 and the electron transport layer 340 to enhance the ability to inject electrons into the electron transport layer 340. The electron injection layer 350 may include an inorganic material such as an alkali metal sulfide or an alkali metal halide, or may include a complex of an alkali metal and an organic matter. In one embodiment of the present application, the electron injection layer 350 may include ytterbium (Yb).

[0142] A third aspect of the present application provides an electronic device comprising the organic electroluminescent device described in the second aspect of the present application.

[0143] According to one embodiment, Figure 2 As shown, the provided electronic device is electronic device 400, which includes the above-mentioned organic electroluminescent device. Electronic device 400 can be, for example, a display device, a lighting device, an optical communication device, or other types of electronic devices, including but not limited to computer screens, mobile phone screens, televisions, electronic paper, emergency lighting, optical modules, etc.

[0144] The synthesis method of the nitrogen-containing compound of the present application is described in detail below with reference to synthesis examples, but the present disclosure is not limited thereby.

[0145] Synthesis Example

[0146] Those skilled in the art will recognize that the chemical reactions described herein can be used to appropriately prepare many of the organic compounds described herein, and that other methods for preparing the compounds described herein are considered within the scope of this application. For example, the synthesis of compounds not exemplified herein can be successfully accomplished by one skilled in the art through modifications such as appropriate protection of interfering groups, the use of known reagents other than those described herein, or conventional modifications of reaction conditions. Compounds for which the syntheses are not described herein are obtained from commercially available raw materials.

[0147] Synthesis of Sub-a1:

[0148]

[0149] Under a nitrogen atmosphere, 2-bromo-6-nitrophenol (10.9 g, 50 mmol), 1-naphthalenemethanol (10.28 g, 65 mmol), 1,1'-bis(diphenylphosphino)ferrocene (0.83 g, 1.5 mmol), and xylene (100 mL) were added sequentially to a 250 mL three-necked flask. Stirring and heating were initiated, and the system was heated to reflux with stirring for 48 hours. After cooling to room temperature, the system was extracted with dichloromethane (100 mL x 3). The organic phases were combined, dried over anhydrous magnesium sulfate, filtered, and the solvent was removed by vacuum distillation to obtain a crude product. The crude product was purified by silica gel column chromatography using dichloromethane / n-heptane as the mobile phase to obtain an off-white solid (7.29 g, 45% yield).

[0150] Referring to the synthesis of Sub-a1, Sub-a2 to Sub-a4 were synthesized by using reactant A shown in Table 1 instead of 1-naphthalenemethanol.

[0151] Table 1: Synthesis of Sub-a2 to Sub-a4

[0152]

[0153] Synthesis of Sub-b1:

[0154]

[0155] Under a nitrogen atmosphere, 1-bromo-6-chloro-2-formylnaphthalene (13.47 g, 50 mmol), trimethyl orthoformate (6.36 g, 60 mmol), methanol (150 mL), and a drop of concentrated sulfuric acid were added sequentially to a 500 mL three-necked flask. Stirring and heating were initiated, and the temperature was raised to reflux for 2 h. After the system was cooled to room temperature, the reaction solution was neutralized with sodium methoxide, and the solvent was removed by distillation under reduced pressure to obtain a crude product. The crude product was purified by silica gel column chromatography using n-heptane as the mobile phase to obtain a colorless oily liquid (14.52 g, 92% yield).

[0156] Referring to the synthesis of Sub-a1, Sub-b2 to Sub-b5 were synthesized by using reactant B shown in Table 2 instead of 1-bromo-6-chloro-2-formylnaphthalene.

[0157] Table 2: Synthesis of Sub-b2 to Sub-b5

[0158]

[0159]

[0160] Synthesis of Sub-c1:

[0161]

[0162] Under nitrogen, add Sub-b1 (22.1 g, 70 mmol) and tetrahydrofuran (dry, 220 mL) to a 500 mL three-necked flask. Cool the system to -78°C and add n-butyllithium solution (2.0 M in n-hexane, 38.5 mL, 77 mmol) dropwise. After the addition is complete, maintain the temperature (-78°C) and stir for 1 hour. Then, maintain the temperature (-78°C) and continue to maintain the temperature for 1 hour. Then, allow the system to warm to room temperature naturally. Add dilute hydrochloric acid (2 M, 58 mL) dropwise to the reaction mixture and stir for 30 minutes. Extract with dichloromethane (100 mL x 3). Combine the organic phases, dry over anhydrous magnesium sulfate, filter, and remove the solvent by vacuum distillation to obtain a crude oil. Add 25 mL of deionized water and three drops of concentrated hydrochloric acid to the crude product. Heat the system to 70°C and stir for 15 minutes. After cooling the system to room temperature, extraction was performed with dichloromethane (25 mL x 3). The organic phases were combined and dried over anhydrous magnesium sulfate. After filtration, the solvent was removed by distillation under reduced pressure to obtain a crude solid. The crude product was slurried with n-heptane and filtered to obtain the white solid product Sub-c1 (10.17 g, 62%).

[0163] Sub-c2 to Sub-c5 were synthesized by referring to Sub-c1 and using reactant C shown in Table 3 instead of Sub-b1.

[0164] Table 3: Synthesis of Sub-c2 to Sub-c5

[0165]

[0166] Synthesis of Sub-d1:

[0167]

[0168] Under a nitrogen atmosphere, 7-bromo-2-phenylbenzoxazole (13.71 g, 50 mmol), Sub-c1 (12.9 g, 55 mmol), tetrakis(triphenylphosphine)palladium (0.58 g, 0.5 mmol), anhydrous sodium carbonate (10.60 g, 100 mmol), toluene (140 mL), anhydrous ethanol (35 mL), and deionized water (35 mL) were added sequentially to a 500 mL three-necked flask. Stirring and heating were initiated, and the temperature was raised to reflux for 8 h. After the system cooled to room temperature, it was extracted with dichloromethane (100 mL × 3 times). The organic phases were combined and dried over anhydrous magnesium sulfate, filtered, and the solvent was removed by distillation under reduced pressure to obtain a crude product. The crude product was purified by silica gel column chromatography using dichloromethane / n-heptane as the mobile phase to obtain an orange-yellow solid (14.78 g, yield 77%).

[0169] Referring to the synthesis of Sub-d1, reactant D shown in Table 4 was used instead of 7-bromo-2-phenylbenzoxazole, and reactant E was used instead of Sub-c1 to synthesize Sub-d2 to Sub-d12.

[0170] Table 4: Synthesis of Sub-d2 to Sub-d12

[0171]

[0172]

[0173] Synthesis of Sub-e1:

[0174]

[0175] Under a nitrogen atmosphere, Sub-d1 (49.9 g, 130 mmol), (methoxymethyl)triphenylphosphonium chloride (74.38 g, 217 mmol), and anhydrous tetrahydrofuran (500 mL) were added sequentially to a 1000 mL three-necked flask. The mixture was cooled to 0°C in an ice-water bath. A 1 M solution of potassium tert-butoxide in anhydrous tetrahydrofuran (220 mL) was then slowly added dropwise. After the addition was complete, the mixture was slowly warmed to room temperature and stirred for 6 h. The reaction mixture was poured into 1000 mL of deionized water and extracted with ethyl acetate (250 mL x 3). The organic phases were combined, dried over anhydrous magnesium sulfate, filtered, and the solvent was removed by vacuum distillation to obtain the crude product. The crude product was purified by silica gel column chromatography using n-heptane as the mobile phase to obtain a solid (47.12 g, 88% yield).

[0176] Referring to the synthesis of Sub-e1, reactant F shown in Table 5 was used instead of Sub-d1 to synthesize Sub-e2 to Sub-e12.

[0177] Table 5: Synthesis of Sub-e2 to Sub-e12

[0178]

[0179]

[0180] Synthesis of Sub-f1:

[0181]

[0182] Under a nitrogen atmosphere, Sub-e1 (49.0 g, 119 mmol), Eaton's reagent (4.5 mL) and chlorobenzene (500 mL) were added to a 1000 mL three-necked flask in sequence, and the temperature was raised to reflux and the reaction was continued with stirring for 4 h. After the reaction system reached room temperature, the reaction solution was poured into 1000 ml of deionized water, neutralized with saturated sodium hydroxide solution, and then extracted with dichloromethane (250 mL × 3 times). The organic phases were combined and dried over anhydrous magnesium sulfate, filtered, and the solvent was removed by distillation under reduced pressure to obtain a crude product. The crude product was purified by silica gel column chromatography using dichloromethane / n-heptane as the mobile phase to obtain a solid (33.0 g, yield 73%).

[0183] Referring to the synthesis of Sub-f1, Sub-f2 to Sub-f12 were synthesized using reactant G shown in Table 6 instead of Sub-e1.

[0184] Table 6: Synthesis of Sub-f2 to Sub-f12

[0185]

[0186]

[0187] Synthesis of Sub-f13:

[0188]

[0189] Under a nitrogen atmosphere, Sub-f3 (9.49 g, 25 mmol) and 200 mL of benzene-D6 were added to a 100 mL three-necked flask. The temperature was raised to 60°C, and trifluoromethanesulfonic acid (22.51 g, 150 mmol) was added. The temperature was continued to rise to boiling and stirred for 24 hours. After the reaction system cooled to room temperature, 50 mL of heavy water was added, stirred for 10 minutes, and then saturated aqueous K3PO4 was added to neutralize the reaction solution. The organic layer was extracted with dichloromethane (50 mL × 3 times), the organic phases were combined and dried over anhydrous sodium sulfate, filtered, and the solvent was distilled off under reduced pressure to obtain a crude product. The crude product was purified by silica gel column chromatography using n-heptane / dichloromethane as the mobile phase to obtain Sub-f13 (5.39 g, 55% yield) as a white solid.

[0190] Synthesis of Sub-g1:

[0191]

[0192] Under a nitrogen atmosphere, Sub-f1 (16.7 g, 44 mmol), diboronic acid pinacol ester (12.28 g, 48.4 mmol), potassium acetate (9.50 g, 96.8 mmol) and 1,4-dioxane (120 mL) were added in sequence to a 500 mL three-necked flask. Stirring and heating were started. When the system was heated to 40 ° C, tris(dibenzylideneacetone)dipalladium (0.40 g, 0.44 mmol) and (2-dicyclohexylphosphine-2',4',6'triisopropylbiphenyl) (0.42 g, 0.88 mmol) were quickly added. The temperature was continued to rise to reflux and the reaction was stirred overnight. After the system was cooled to room temperature, 200 mL of water was added to the system, and the mixture was stirred thoroughly for 30 min. The mixture was filtered under reduced pressure, and the filter cake was washed with deionized water until neutral, and then rinsed with 100 mL of anhydrous ethanol to obtain a gray solid. The crude product was slurried once with n-heptane, dissolved with 200 mL of toluene, and passed through a silica gel column to remove the catalyst. After concentration, a white solid Sub-g1 (15.14 g, 73% yield) was obtained.

[0193] Referring to the synthesis of Sub-g1, reactant H shown in Table 7 was used instead of Sub-f1 to synthesize Sub-g2 to Sub-g12.

[0194] Table 7: Synthesis of Sub-g2 to Sub-g12

[0195]

[0196]

[0197] Synthesis of Sub-h1:

[0198]

[0199] Under a nitrogen atmosphere, m-chlorobromobenzene (4.78 g, 25 mmol), Sub-g3 (12.96 g, 27.5 mmol), tetrakis(triphenylphosphine)palladium (0.29 g, 0.25 mmol), anhydrous potassium carbonate (6.9 g, 100 mmol), toluene (140 mL), anhydrous ethanol (35 mL), and deionized water (35 mL) were added to a 500 mL three-necked flask in sequence. Stirring and heating were initiated, and the temperature was raised to reflux for 16 h. After the system cooled to room temperature, it was extracted with dichloromethane (100 mL × 3 times). The organic phases were combined and dried over anhydrous magnesium sulfate, filtered, and the solvent was removed by distillation under reduced pressure to obtain a crude product. The crude product was purified by silica gel column chromatography using n-heptane as the mobile phase to obtain a white solid (9.8 g, yield 86%).

[0200] Referring to the synthesis of Sub-h1, reactant J shown in Table 8 was used instead of m-chlorobromobenzene, and reactant K was used instead of Sub-g3 to synthesize Sub-h2 to Sub-4.

[0201] Table 8: Synthesis of Sub-h2 to Sub-h4

[0202]

[0203] Synthesis of compound A3:

[0204]

[0205] Under nitrogen, to a 250 mL three-necked flask were added Sub-g1 (11.78 g, 25 mmol), RM-1 (CAS: 2737218-48-1, 9.0 g, 25 mmol), tetrakis(triphenylphosphine)palladium (0.29 g, 0.25 mmol), anhydrous potassium carbonate (6.9 g, 50 mmol), tetrabutylammonium bromide (0.8 g, 2.5 mmol), toluene (120 mL), tetrahydrofuran (30 mL), and deionized water (30 mL). Stirring and heating were initiated, and the temperature was raised to reflux for 16 h. After the system cooled to room temperature, extraction with dichloromethane (100 mL × 3 times) was performed. The organic phases were combined, dried over anhydrous magnesium sulfate, filtered, and the solvent was removed by distillation under reduced pressure to obtain the crude product. The crude product was purified by silica gel column chromatography using dichloromethane / n-heptane as the mobile phase to obtain a white solid (12.24 g, yield 73%, m / z = 671.2 [M+H] + ).

[0206] Referring to the synthesis of compound A3, reactant L shown in Table 9 was used instead of Sub-g1, and reactant M was used instead of RM-1 to synthesize the compounds of the present application in Table 9.

[0207] Table 9: Synthesis of compounds of the present application

[0208]

[0209]

[0210]

[0211]

[0212]

[0213] Synthesis of compound B6:

[0214]

[0215] Under a nitrogen atmosphere, Sub-f1 (9.50 g, 25 mmol), RM-2 (CAS: 1326137-97-6, 9.04 g, 25 mmol), tris(dibenzylideneacetone)dipalladium (0.916 g, 0.5 mmol), (2-dicyclohexylphosphine-2',4',6'triisopropylbiphenyl) (0.95 g, 1 mmol), sodium tert-butoxide (9.61 g, 50 mmol) and xylene (250 mL) were added sequentially to a 500 mL three-necked flask, the temperature was raised to reflux, and the reaction was stirred overnight; after the system was cooled to room temperature, it was extracted with dichloromethane (100 mL × 3 times), the organic phases were combined and dried over anhydrous sodium sulfate, filtered, and the solvent was distilled off under reduced pressure to obtain a crude product. The crude product was purified by silica gel column chromatography using n-heptane / dichloromethane as the mobile phase to obtain an off-white solid (14.45 g; yield 82%, m / z = 705.3 [M+H] + ).

[0216] With reference to the synthesis of compound B6, reactant O shown in Table 10 was used instead of Sub-f1, and reactant P was used instead of RM-2 to synthesize the compounds of the present application in Table 10.

[0217] Table 10 Synthesis of compounds of this application

[0218]

[0219]

[0220]

[0221]

[0222] Compound A145 NMR: 1 H-NMR (400MHz, CD2Cl2) δppm: 8.84 (s, 2H), 8.65 (d, 1H), 8.61 (d, 1H), 8.55-8.50 (m ,3H),8.35(d,2H),8.18-8.05(m,8H),8.02-7.96(m,3H),7.83(t,1H),7.64(t,2H),

[0223] 7.57(t,2H),7.49(t,2H),7.38(t,1H);

[0224] Compound B61 NMR: 1 H-NMR (400MHz, CD2Cl2) δppm: 8.35 (d, 2H), 8.17 (d, 1H), 8.08 (d, 1H),

[0225] 8.0-7.89(m,5H),7.67(d,1H),7.59-7.53(m,3H),7.49-7.32(m,9H),7 .27-7.15(m,4H),6.99(s,1H),6.80(d,1H),6.73(d,1H),6.66(d,1H).

[0226] Preparation and evaluation of organic electroluminescent devices:

[0227] Example 1: Preparation of red organic electroluminescent device

[0228] First, the anode pretreatment is carried out through the following process: On the ITO / Ag / ITO substrate, the surface treatment is performed using ultraviolet ozone and O2:N2 plasma to increase the work function of the anode. The surface of the ITO substrate can also be cleaned with an organic solvent to remove impurities and oil stains on the surface of the ITO substrate.

[0229] On the experimental substrate (anode), PD:α-NPD was co-evaporated at an evaporation rate ratio of 2%:98% to form a film with a thickness of Then, α-NPD was vacuum-deposited on the HIL to form a hole injection layer with a thickness of The hole transport layer of the first hole transport layer is vacuum-deposited with compound HT-1 to form a hole transport layer with a thickness of The second hole transport layer

[0230] Next, on the second hole transport layer, compound A3:RH-P:RD was co-evaporated at a ratio of 49%:49%:2% to form a layer with a thickness of Red light emitting layer (EML)

[0231] On the light-emitting layer, compound ET-1 and LiQ were co-evaporated at a 1:1 evaporation rate ratio to form Yb is evaporated on the electron transport layer to form a layer with a thickness of Then, magnesium (Mg) and silver (Ag) were mixed at a 1:9 evaporation rate and vacuum evaporated on the electron injection layer to form a layer with a thickness of cathode.

[0232] In addition, the thickness of the vacuum evaporation layer on the cathode is CP, thereby completing the manufacture of red organic electroluminescent devices.

[0233] Examples 2 to 33

[0234] An organic electroluminescent device was prepared by the same method as in Example 1, except that the compounds shown in Table 11 below were used instead of Compound A3 in Example 1 when preparing the light-emitting layer.

[0235] Comparative Examples 1 to 3

[0236] An organic electroluminescent device was prepared using the same method as in Example 1, except that Compound A3 in Example 1 was replaced by Compound A, Compound B, and Compound C respectively when preparing the light-emitting layer.

[0237] The performance of the red organic electroluminescent devices prepared in Examples 1-33 and Comparative Examples 1-3 was tested. Specifically, at 10 mA / cm 2 The IVL performance of the device was tested under the conditions of T95 device life at 20mA / cm 2 The test was carried out under the conditions of , and the test results are shown in Table 11.

[0238] In each embodiment and comparative example, the structures of the main materials used are as follows:

[0239]

[0240] Table 11

[0241]

[0242]

[0243]

[0244] As shown in Table 11, when the compound of the present invention is used as an electron transport host material in the light emitting layer of a red organic electroluminescent device, the luminous efficiency is increased by at least 10.4% and the life is increased by at least 15.6%.

[0245] Example 34: Red organic electroluminescent device

[0246] First, the anode pretreatment is carried out through the following process: On the ITO / Ag / ITO substrate, the surface treatment is performed using ultraviolet ozone and O2:N2 plasma to increase the work function of the anode. The surface of the ITO substrate can also be cleaned with an organic solvent to remove impurities and oil stains on the surface of the ITO substrate.

[0247] On the experimental substrate (anode), PD:α-NPD was co-deposited at a deposition rate ratio of 2%:98% to form a film with a thickness of Then, α-NPD was vacuum-deposited on the HIL to form a hole injection layer with a thickness of The hole transport layer of the first hole transport layer is vacuum-deposited with compound HT-1 to form a hole transport layer with a thickness of The second hole transport layer

[0248] Next, on the second hole transport layer, compound B6:RH-N:RD was co-evaporated at a ratio of 49%:49%:2% to form a layer with a thickness of Red light emitting layer (EML)

[0249] On the light-emitting layer, compound ET-2 and LiQ were co-evaporated at a 1:1 evaporation rate ratio to form Yb is evaporated on the electron transport layer to form a layer with a thickness of Then, magnesium (Mg) and silver (Ag) were mixed at a 1:9 evaporation rate and vacuum evaporated on the electron injection layer to form a layer with a thickness of cathode.

[0250] In addition, the thickness of the vacuum evaporation layer on the cathode is CP, thereby completing the manufacture of red organic electroluminescent devices.

[0251] Examples 34 to 60

[0252] An organic electroluminescent device was prepared by the same method as in Example 34, except that compound Y shown in Table 12 below was used instead of compound B6 in Example 34 when preparing the light-emitting layer.

[0253] Comparative Examples 4 to 6

[0254] An organic electroluminescent device was prepared using the same method as in Example 34, except that Compound D, Compound E, and Compound F were used instead of Compound B6 in Example 34 when preparing the light-emitting layer.

[0255] Among them, when preparing each embodiment and comparative example, the compound structure used is as follows:

[0256]

[0257] The performance of the red organic electroluminescent devices prepared in Examples 34 to 60 and Comparative Examples 4 to 6 was tested. Specifically, at 10 mA / cm 2 The IVL performance of the device was tested under the conditions of T95 device life at 20mA / cm 2 The test was carried out under the conditions of , and the test results are shown in Table 12.

[0258] Table 12

[0259]

[0260]

[0261] As can be seen from Table 12 above, when the compound of the present invention is used as a hole transport host material in the host material of the light-emitting layer of a red organic electroluminescent device, the luminous efficiency is increased by at least 13.1% and the lifespan is increased by at least 11.0%.

[0262] The preferred embodiments of the present invention are described in detail above in conjunction with the accompanying drawings. However, the present invention is not limited to the specific details in the above embodiments. Within the technical concept of the present invention, various simple modifications can be made to the technical solution of the present invention, and these simple modifications all fall within the scope of protection of the present invention.

Claims

1. A nitrogen-containing compound, characterized in that The nitrogen-containing compound is selected from the structures shown in the following formulas 1-1 to 1-16: Wherein, group A is selected from formula (A-1) or (A-2): Z1, Z2 and Z3 are selected from C(R1) or N, and at least two of Z1, Z2 and Z3 are N; L, L1, L2, L3 and L4 are the same or different and are each independently selected from a single bond, a substituted or unsubstituted phenylene group, a substituted or unsubstituted naphthylene group, a substituted or unsubstituted biphenylene group, a substituted or unsubstituted dibenzothiophenylene group, a substituted or unsubstituted dibenzofuranylene group, a substituted or unsubstituted fluorenylene group, a substituted or unsubstituted phenanthrenylene group, or a substituted or unsubstituted carbazolylene group; The substituents in L, L1, L2, L3 and L4 are the same or different and are each independently selected from deuterium, fluorine, cyano, methyl, ethyl, isopropyl, tert-butyl, trifluoromethyl, trideuteromethyl, trimethylsilyl or phenyl; Ar, Ar1, Ar2, Ar3 or Ar4 are the same or different and are each independently selected from a substituted or unsubstituted group W; wherein the unsubstituted group W is selected from the group consisting of: The substituted group W has one or more substituents, each independently selected from deuterium, fluorine, cyano, trideuteromethyl, trimethylsilyl, trifluoromethyl, cyclopentyl, cyclohexyl, adamantyl, methyl, ethyl, isopropyl, tert-butyl, phenyl, naphthyl, pyridyl, dibenzofuranyl, dibenzothiophenyl or carbazolyl, and when the number of substituents on the group W is greater than 1, the substituents are the same or different; each R1, R2 and R3 are the same or different and are independently selected from hydrogen, deuterium, cyano, fluorine, trideuteromethyl, trimethylsilyl, trifluoromethyl, methyl, ethyl, isopropyl, tert-butyl; n1 and n2 are each independently selected from 1 or 2, and n3 is selected from 1, 2, 3, 4 or 5.

2. The nitrogen-containing compound according to claim 1, wherein Ar is selected from substituted or unsubstituted phenyl, substituted or unsubstituted biphenyl, substituted or unsubstituted terphenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted phenanthrenyl, substituted or unsubstituted fluorenyl, substituted or unsubstituted triphenylene, substituted or unsubstituted dibenzothienyl, substituted or unsubstituted dibenzofuranyl, substituted or unsubstituted carbazolyl.

3. The nitrogen-containing compound according to claim 2, wherein The substituents in Ar are each independently selected from deuterium, fluorine, cyano, trideuteromethyl, trimethylsilyl, trifluoromethyl, methyl, ethyl, isopropyl, tert-butyl, phenyl, or naphthyl.

4. The nitrogen-containing compound according to claim 1, wherein L is selected from the group consisting of a single bond or the following groups:

5. The nitrogen-containing compound according to claim 1, wherein L1, L2, L3 and L4 are each independently selected from the group consisting of a single bond or the following groups:

6. The nitrogen-containing compound according to claim 1, wherein Each is independently selected from the following groups:

7. The nitrogen-containing compound according to claim 1, wherein Ar is selected from the following groups:

8. The nitrogen-containing compound according to claim 1, wherein Group A is selected from the following groups:

9. A nitrogen-containing compound, characterized in that The nitrogen-containing compound is selected from the group consisting of the following compounds:

10. An organic electroluminescent device comprising an anode and a cathode disposed opposite to each other, and a functional layer disposed between the anode and the cathode; characterized in that: The functional layer comprises the nitrogen-containing compound according to any one of claims 1 to 9.

11. The organic electroluminescent device according to claim 10, characterized in that: The functional layer includes an organic light-emitting layer, and the organic light-emitting layer contains the nitrogen-containing compound.

12. An electronic device, characterized in that The organic electroluminescent device according to claim 10 or 11.

Citation Information

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