An organic compound and an organic electroluminescence device using the same
By using organic compounds with excellent hole transport capability and thermal stability, the hole transport region of blue organic electroluminescent devices was optimized, solving the problem of poor device lifetime under high temperature environment and achieving improved efficiency and enhanced stability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- JIANGSU SUNERA TECH CO LTD
- Filing Date
- 2022-06-24
- Publication Date
- 2026-07-24
AI Technical Summary
Blue organic light-emitting diodes (OLEDs) exhibit electron-rich and hole-deficient behavior at high temperatures, resulting in poor device lifetime. Therefore, it is necessary to improve the mobility of hole transport materials to enhance the high-temperature lifetime and performance of the devices.
An organic compound with excellent hole transport capability and thermal stability is used as the hole transport material to form the hole transport region of the organic electroluminescent device, including a hole injection layer, a hole transport layer and an electron blocking layer, thereby optimizing carrier balance to improve device efficiency and lifetime.
It improves device efficiency and reduces voltage, while enhancing device stability and lifespan, especially performance under high-temperature conditions.
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Abstract
Description
Technical Field
[0001] This invention relates to the field of semiconductor materials technology, and in particular to an organic compound and an organic electroluminescent device prepared therefrom. Background Technology
[0002] Organic Light Emission Diodes (OLEDs) technology can be used to manufacture novel display products and lighting products, and it holds promise as a replacement for existing liquid crystal displays and fluorescent lighting, with a wide range of applications. OLEDs have a sandwich-like structure, consisting of electrode material layers and organic functional materials sandwiched between these layers. These various organic functional materials are stacked together according to their intended use to form the OLED device. As a current-carrying device, when a voltage is applied to the two electrodes of the OLED, and an electric field is used to act on the positive and negative charges in the organic functional material layers, these charges recombine in the light-emitting layer, thus generating OLED electroluminescence.
[0003] Currently, OLED display technology has been applied in smartphones, tablets, and other fields, and will further expand into large-screen applications such as televisions. However, compared with the requirements of actual product applications, the luminous efficiency, lifespan, and other performance characteristics of OLED devices still need further improvement. Research on improving the performance of OLED light-emitting devices includes: reducing the driving voltage of the device, increasing the luminous efficiency of the device, and increasing the lifespan of the device. To continuously improve the performance of OLED devices, it is necessary not only to innovate in OLED device structure and manufacturing processes, but also to continuously research and innovate OLED optoelectronic functional materials to create functional materials for higher-performance OLEDs.
[0004] Blue organic light-emitting diodes (OLEDs) have always been a weak point in the development of full-color OLEDs. To date, the efficiency and lifetime of blue light-emitting devices have been difficult to improve comprehensively. Therefore, improving the performance of these devices remains a crucial issue and challenge in this field. Currently, most blue light-emitting substrates used in the market are electron-biased. Therefore, to regulate the carrier balance of the emitting layer, the hole transport material needs to have excellent hole transport performance. Better hole injection and transport will cause the recombination region to shift away from the electron blocking layer, thus reducing luminescence at the interface and improving device performance and lifetime. Therefore, the hole transport region material is required to have high hole injection capacity, high hole mobility, high electron blocking capacity, and high electron weather resistance.
[0005] As is well known in the art, in high-temperature environments, the difference between electron mobility and hole mobility is more pronounced, resulting in blue light devices exhibiting electron-rich and hole-deficient characteristics and poor device lifetime. In order to improve the high-temperature lifetime of blue light devices, it is necessary to improve the mobility of hole transport materials, especially the mobility under high-temperature conditions. Summary of the Invention
[0006] To address the aforementioned problems in the prior art, the applicant of this invention provides an organic compound and an organic electroluminescent device prepared therefrom. The organic compound of this invention possesses excellent hole transport capability and thermal stability. When the organic compound of this invention is used to form the hole transport material of an organic electroluminescent device, it can simultaneously exhibit the effects of improved device efficiency (index) and extended lifetime, especially extending the high-temperature lifetime of the device.
[0007] The technical solution of the present invention is as follows: an organic compound, the structure of which is shown in general formula (1):
[0008]
[0009]
[0010] In general formula (1), A is represented by formula (3) or formula (4).
[0011] The B is represented by equation (2), equation (3), or equation (4);
[0012] The C is represented by formula (2), formula (3), formula (4) or a hydrogen atom;
[0013] R1, R2, and R3 are independently represented as hydrogen atoms, substituted or unsubstituted C6-C atoms, respectively. 30 Aryl, substituted or unsubstituted 5-30 member heteroaryl; wherein R0 substitution can be via bonding or cycloaddition;
[0014] In equations (2), (3) and (4), the curves represent the connection points with general equation (1);
[0015] L, L0 represents a single bond, substituted or unsubstituted C6-C. 30 Aryl, substituted or unsubstituted 5-30 heteroaryl groups;
[0016] R0 represents a hydrogen atom, or a substituted or unsubstituted C6-C atom. 30 Aryl, substituted or unsubstituted 5-30 member heteroaryl; wherein R0 substitution can be via bonding or cycloaddition;
[0017] R4, R5, and R6 are independently represented as substituted or unsubstituted C6-C. 30Aryl, substituted or unsubstituted 5-30 membered heteroaryl groups;
[0018] When A is represented by equation (3), R1, R2, and R3 are not simultaneously represented as hydrogen atoms;
[0019] The substituents of the aforementioned substituted or unsubstituted groups are selected from deuterium, methyl, deuterated methyl, ethyl, tert-butyl, adamantyl, C6-C. 30 Aryl or 5-30 heteroaryl groups;
[0020] The heteroatom in the heteroaryl group is selected from one or more of oxygen, sulfur, or nitrogen atoms.
[0021] In a preferred embodiment, the structure of the organic compound is shown in general formulas (1-1), (1-2), (1-3), and (1-4):
[0022]
[0023] In general formula (1-1), C represents formula (2), formula (3), formula (4) or a hydrogen atom;
[0024] L, L0 represents a single bond, substituted or unsubstituted C6-C. 30 Aryl, substituted or unsubstituted 5-30 heteroaryl groups;
[0025] The R0 is independently represented by a hydrogen atom, a substituted or unsubstituted C6-C atom. 30 Aryl, substituted or unsubstituted 5-30 member heteroaryl; wherein R0 substitution can be via bonding or cycloaddition;
[0026] R1, R2, and R3 are independently represented as hydrogen atoms, substituted or unsubstituted C6-C atoms, respectively. 30 Aryl, substituted or unsubstituted 5-30 membered heteroaryl groups;
[0027] R1, R2, and R3 are not simultaneously represented as hydrogen atoms;
[0028] R5 and R6 are independently represented as substituted or unsubstituted C6-C, respectively. 30 Aryl, substituted or unsubstituted 5-30 membered heteroaryl groups;
[0029] In general formulas (1-2) and (1-3), L and L0 represent single-bonded, substituted, or unsubstituted C6-C bonds. 30 Aryl, substituted or unsubstituted 5-30 heteroaryl groups;
[0030] R0, R1, R2, and R3 are independently represented as hydrogen atoms, substituted or unsubstituted C6-C atoms, respectively. 30Aryl, substituted or unsubstituted 5-30 member heteroaryl; wherein R0 substitution can be via bonding or cycloaddition;
[0031] R5 and R6 are independently represented as substituted or unsubstituted C6-C, respectively. 30 Aryl, substituted or unsubstituted 5-30 membered heteroaryl groups;
[0032] In general formulas (1-4), L represents a single bond, substituted or unsubstituted C6-C. 30 Aryl, substituted or unsubstituted 5-30 heteroaryl groups;
[0033] R1, R2, and R3 are independently represented as hydrogen atoms, substituted or unsubstituted C6-C atoms, respectively. 30 Aryl, substituted or unsubstituted 5-30 member heteroaryl; wherein R0 substitution can be via bonding or cycloaddition;
[0034] R4, R5, and R6 are independently represented as substituted or unsubstituted C6-C. 30 Aryl, substituted or unsubstituted 5-30 membered heteroaryl groups;
[0035] The substituents of the aforementioned substituted or unsubstituted groups are selected from deuterium, methyl, deuterated methyl, ethyl, tert-butyl, adamantyl, C6-C. 30 Aryl or 5-30 heteroaryl groups;
[0036] The heteroatom in the heteroaryl group is selected from one or more of oxygen, sulfur, or nitrogen atoms.
[0037] In a preferred embodiment, the structure of the organic compound is shown in general formulas (1-5), (1-6), (1-7), and (1-8):
[0038]
[0039] In general formulas (1-5), R3 represents substituted or unsubstituted C6-C. 30 Aryl, substituted or unsubstituted 5-30 membered heteroaryl, wherein the meanings of R0, R5, R6, L and L0 are as described above;
[0040] In general formulas (1-6) and (1-7), R3 represents a hydrogen atom, a substituted or unsubstituted C6-C atom. 30 Aryl, substituted or unsubstituted 5-30 membered heteroaryl, wherein the meanings of R0, R5, R6, L and L0 are as described above;
[0041] In general formula (1-8), R2 and R3 are independently represented as hydrogen atoms, substituted or unsubstituted C6-C atoms, respectively. 30The meanings of R4, R5, R6, and L are as described above.
[0042] In a preferred embodiment, the structure of the organic compound is shown in general formulas (1-9), (1-10), (1-11), and (1-12):
[0043]
[0044] In general formulas (1-9), L0 and L are respectively independently represented as a single bond, a substituted or substituted phenylene, a substituted or unsubstituted naphthylene, a substituted or unsubstituted biphenylene, a substituted or unsubstituted furanylene, and a substituted or unsubstituted thiopheneylene.
[0045] R3 represents one of the following: substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted diphenyl, substituted or unsubstituted terphenyl, substituted or unsubstituted furanyl, substituted or unsubstituted benzofuranyl, substituted or unsubstituted dibenzofuranyl, substituted or unsubstituted thiopheneyl, substituted or unsubstituted benzothiopheneyl, substituted or unsubstituted dibenzothiopheneyl, substituted or unsubstituted phenanthyl, substituted or unsubstituted indene, substituted or unsubstituted piperonyl, substituted or unsubstituted fluorenyl, substituted or unsubstituted diphenylfluorenyl, substituted or unsubstituted carbazoyl, and substituted or unsubstituted N-phenylcarbazoyl.
[0046] R5-R6 are independently represented as substituted or unsubstituted C6-C. 30 Aryl, substituted or unsubstituted 5-30 membered heteroaryl groups;
[0047] In general formulas (1-10), (1-11), and (1-12), L0 and L are respectively independently represented as a single bond, a substituted or substituted phenylene, a substituted or unsubstituted naphthylene, a substituted or unsubstituted biphenylene, a substituted or unsubstituted furanylene, and a substituted or unsubstituted thiopheneylene.
[0048] The R3 represents one of the following: hydrogen atom, substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted diphenyl, substituted or unsubstituted terphenyl, substituted or unsubstituted furanyl, substituted or unsubstituted benzofuranyl, substituted or unsubstituted dibenzofuranyl, substituted or unsubstituted thiopheneyl, substituted or unsubstituted benzothiopheneyl, substituted or unsubstituted dibenzothiopheneyl, substituted or unsubstituted phenanthyl, substituted or unsubstituted indene, substituted or unsubstituted piperonyl, substituted or unsubstituted fluorenyl, substituted or unsubstituted diphenylfluorenyl, substituted or unsubstituted carbazoyl, and substituted or unsubstituted N-phenylcarbazoyl.
[0049] R4 represents one of the following: substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted diphenyl, substituted or unsubstituted terphenyl, substituted or unsubstituted furanyl, substituted or unsubstituted benzofuranyl, substituted or unsubstituted dibenzofuranyl, substituted or unsubstituted thiopheneyl, substituted or unsubstituted benzothiopheneyl, substituted or unsubstituted dibenzothiopheneyl, substituted or unsubstituted phenanthyl, substituted or unsubstituted indene, substituted or unsubstituted piperonyl, substituted or unsubstituted fluorenyl, substituted or unsubstituted diphenylfluorenyl, substituted or unsubstituted carbazoyl, and substituted or unsubstituted N-phenylcarbazoyl.
[0050] R5-R6 are independently represented as substituted or unsubstituted C6-C. 30 Aryl, substituted or unsubstituted 5-30 membered heteroaryl groups;
[0051] The substituents of the aforementioned substituted or substituted groups are selected from one or more of deuterium, methyl, deuterated methyl, ethyl, tert-butyl, adamantyl, phenyl, naphthyl, and biphenyl.
[0052] In a preferred embodiment, L0 and L are respectively independently represented as a single bond, a substituted or substituted phenylene, a substituted or unsubstituted naphthylene, a substituted or unsubstituted biphenylene, a substituted or unsubstituted furanylene, and a substituted or unsubstituted thiopheneylene.
[0053] R0, R1, R2, and R3 represent one of the following: hydrogen atom, substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted diphenyl, substituted or unsubstituted terphenyl, substituted or unsubstituted furanyl, substituted or unsubstituted benzofuranyl, substituted or unsubstituted dibenzofuranyl, substituted or unsubstituted thiopheneyl, substituted or unsubstituted benzothiopheneyl, substituted or unsubstituted dibenzothiopheneyl, substituted or unsubstituted phenanthyl, substituted or unsubstituted indene, substituted or unsubstituted piperonyl, substituted or unsubstituted fluorenyl, substituted or unsubstituted diphenylfluorenyl, substituted or unsubstituted spirofluorenyl, substituted or unsubstituted carbazoyl, and substituted or unsubstituted N-phenylcarbazoyl.
[0054] R4, R5, and R6 represent one of the following: substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted diphenyl, substituted or unsubstituted terphenyl, substituted or unsubstituted furanyl, substituted or unsubstituted benzofuranyl, substituted or unsubstituted dibenzofuranyl, substituted or unsubstituted thiopheneyl, substituted or unsubstituted benzothiopheneyl, substituted or unsubstituted dibenzothiopheneyl, substituted or unsubstituted phenanthyl, substituted or unsubstituted indene, substituted or unsubstituted piperonyl, substituted or unsubstituted fluorenyl, substituted or unsubstituted diphenylfluorenyl, substituted or unsubstituted spirofluorenyl, substituted or unsubstituted carbazoyl, and substituted or unsubstituted N-phenylcarbazoyl.
[0055] The substituents of the aforementioned substituted or substituted groups are selected from one or more of deuterium, methyl, deuterated methyl, ethyl, tert-butyl, adamantyl, phenyl, naphthyl, and biphenyl.
[0056] In a preferred embodiment, equation (2) is represented by any of the following structures:
[0057]
[0058] Equation (3) can be represented by any of the following structures:
[0059]
[0060] Equation (4) can be represented by any of the following structures:
[0061]
[0062] In a preferred embodiment, the organic compound has any one of the following structures:
[0063]
[0064]
[0065]
[0066]
[0067]
[0068]
[0069]
[0070]
[0071] The present invention provides an organic electroluminescent device, which sequentially includes an anode, a hole transport region, a light-emitting region, an electron transport region, and a cathode, wherein the hole transport region contains the organic compound.
[0072] In a preferred embodiment, the hole transport region of the organic electroluminescent device includes a hole injection layer, a hole transport layer, and an electron blocking layer, wherein the hole transport layer contains the organic compound.
[0073] The present invention provides a lighting or display element comprising the aforementioned organic electroluminescent device.
[0074] The beneficial technical effects of this invention are as follows:
[0075] (1) The organic compound of the present invention has better dispersion of the whole molecule and a wider HOMO distribution, which is beneficial to improve hole mobility and promote hole transport, and can effectively improve device efficiency and reduce device voltage.
[0076] (2) The structural features of the organic compounds of the present invention are beneficial to reducing the intermolecular interaction forces, thereby reducing the vapor deposition temperature of the molecules. In other words, even if the molecular weight of the structure is relatively high, it can ensure a low vapor deposition temperature. This excellent performance is not only beneficial to the thermal vapor deposition of the material, but also to controlling the thermal decomposition rate of the material, thereby improving the stability of the material in device applications.
[0077] (3) At the same time, this structural feature can increase the glass transition temperature of molecules, thereby ensuring the stability of the film phase state and the stability of the film phase state under illumination conditions, which is conducive to obtaining the lifetime stability of the device. Attached Figure Description
[0078] Figure 1 This is a cross-sectional view of the organic electroluminescent device of the present invention.
[0079] In the figure, 1 represents the substrate layer; 2 represents the anode layer; 3 represents the hole injection layer; 4 represents the hole transport layer; 5 represents the electron blocking layer; 6 represents the light-emitting layer; 7 represents the hole blocking layer; 8 represents the electron transport layer; 9 represents the electron injection layer; 10 represents the cathode layer; and 11 represents the capping layer. Detailed Implementation
[0080] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. The following description of at least one exemplary embodiment is merely illustrative and is in no way intended to limit the present invention or its application or use. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0081] In this invention, when a layer or element is referred to as being "above" another layer or substrate, the layer or element may be located directly above the other layer or substrate, or there may be intermediate layers. Furthermore, it will be understood that when a layer is referred to as being "between" two layers, the layer may be the only layer between the two layers, or there may be one or more intermediate layers. The same reference numerals throughout the drawings denote the same elements.
[0082] In this invention, the terms "upper," "lower," "top," and "bottom," used to describe electrodes, organic electroluminescent devices, and other structures, indicate orientation only in a specific state and do not imply that the structure can only exist in that orientation. Conversely, if the structure can be repositioned, such as by inverting it, the orientation of the structure changes accordingly. Specifically, in this invention, the "bottom" or "lower" side of the electrode refers to the side of the electrode closer to the substrate during fabrication, while the opposite side farther from the substrate is the "top" or "upper" side.
[0083] In this specification, the term "substitution" means that one or more hydrogen atoms on a specified atom or group are replaced by a specified group, provided that the normal valence of the specified atom is not exceeded under the existing conditions.
[0084] In this specification, hole characteristics refer to the characteristics that allow holes formed in the anode to be easily injected into and transported in the light-emitting layer when an electric field is applied, due to conductivity characteristics at the highest occupied molecular orbital (HOMO) level.
[0085] In this specification, electronic characteristics refer to the characteristics that allow electrons formed in the cathode to be readily injected into and transported in the light-emitting layer when an electric field is applied, and which are attributed to conductivity characteristics based on the lowest unoccupied molecular orbital (LUMO) level.
[0086] The organic electroluminescent device of the present invention can be a bottom-emitting organic electroluminescent device, a top-emitting organic electroluminescent device, or a multilayer organic electroluminescent device, and there is no specific limitation thereto.
[0087] In the organic electroluminescent device of this invention, any substrate commonly used in organic electroluminescent devices can also be used. Examples include transparent substrates, such as glass or transparent plastic substrates; opaque substrates, such as silicon substrates; and flexible polyimide (PI) film substrates. Different substrates have different mechanical strengths, thermal stability, transparency, surface smoothness, and water resistance. Their application varies depending on their properties. In this invention, a transparent substrate is preferred. There are no particular limitations on the thickness of the substrate.
[0088] anode
[0089] Preferably, the anode can be formed on the substrate. In this invention, the anode and cathode are opposite each other. The anode can be made of a conductor with a high work function to facilitate hole injection, and can be, for example, a metal such as nickel, platinum, copper, zinc, silver or alloys thereof; a metal oxide such as zinc oxide, indium oxide, indium tin oxide (ITO), and indium zinc oxide (IZO); a combination of metal and metal oxide, such as ZnO and Al or ITO and Ag; a conductive polymer such as poly(3-methylthiophene), poly(3,4-(ethylene-1,2-dioxy)thiophene), and polyaniline, but is not limited thereto. The thickness of the anode depends on the material used, typically 50-500 nm, preferably 70-300 nm, and more preferably 100-200 nm.
[0090] cathode
[0091] The cathode can be made of a conductor with a low work function to facilitate electron injection, and can be, for example, a metal or alloy thereof, such as magnesium, calcium, sodium, potassium, titanium, indium, aluminum, silver, tin, and combinations thereof; multilayer materials, such as LiF / Al, Li2O / Al, and BaF2 / Ca, but not limited thereto. The thickness of the cathode depends on the material used, typically 10-50 nm, preferably 15-20 nm.
[0092] Light-emitting area
[0093] In this invention, the light-emitting region can be disposed between the anode and the cathode, and can include at least one host material and at least one guest material. Both the host and guest materials of the light-emitting region in the organic electroluminescent device of this invention can be light-emitting layer materials known in the prior art for organic electroluminescent devices. The host material can be, for example, a thiazole derivative, a benzimidazole derivative, a polydialkylfluorene derivative, or 4,4'-bis(9-carbazolyl)biphenyl (CBP). The host material can be a compound containing anthracene groups. The guest material can be, for example, a quinacridone, coumarin, rubrene, perylene and its derivatives, benzopyran derivatives, rhodamine derivatives, or aminostyrene derivatives.
[0094] In a preferred embodiment of the present invention, the luminescent region contains one or two host material compounds.
[0095] In a preferred embodiment of the present invention, the host material of the luminescent region is selected from one or more of the following compounds BH-1-BH-11:
[0096]
[0097] In this invention, the luminescent region may contain phosphorescent or fluorescent guest materials to improve the fluorescence or phosphorescence properties of the organic electroluminescent device. Specific examples of phosphorescent guest materials include metal complexes of iridium, platinum, etc., while those commonly used in the art can be used for fluorescent guest materials. In a preferred embodiment of this invention, the guest material used in the luminescent film layer is selected from one of the following compounds: BD-1 to BD-10.
[0098]
[0099] In the light-emitting region of the present invention, the ratio of the host material to the guest material is 99:1-70:30, preferably 99:1-85:15 and more preferably 97:3-87:13, based on mass.
[0100] The thickness of the light-emitting region can be 10-50 nm, preferably 15-30 nm, but the thickness is not limited to this range.
[0101] Hole transport region
[0102] In the organic electroluminescent device of the present invention, a hole transport region is disposed between the anode and the light-emitting region, and includes a hole injection layer, a hole transport layer and an electron blocking layer.
[0103] Hole injection layer
[0104] The hole injection material used in the hole injection layer (also known as the anode interface buffer layer) is a material capable of fully accepting holes from the anode at low voltages, and the highest occupied molecular orbital (HOMO) of the hole injection material is preferably a value between the work function of the anode material and the HOMO of the adjacent organic material layer. In a preferred embodiment of the invention, the hole injection layer is a mixed film layer of a host organic material and a p-type dopant. For holes to be smoothly injected from the anode into the organic film layer, the HOMO energy level of the host organic material must possess certain characteristics with the p-type dopant to facilitate charge transfer states between the host and dopant materials, achieving ohmic contact between the hole injection layer and the anode, thereby achieving efficient hole injection from the electrode to the hole injection layer. This characteristic is summarized as follows: the difference between the HOMO energy level of the host material and the LUMO energy level of the p-type dopant is ≤0.4 eV. Therefore, for hole-type host materials with different HOMO energy levels, different p-type dopant materials need to be selected to match them in order to achieve ohmic contact at the interface and improve the hole injection effect.
[0105] Preferably, specific examples of the main organic material include: metalloporphyrins, oligothiophenes, aromatic amine organic materials, hexanitrile hexaazabenzophenanthrene, quinacridone organic materials, perylene organic materials, anthraquinones, polyanilines, and polythiophene conductive polymers; but are not limited thereto.
[0106] Preferably, the p-type doped material is a charge-conducting compound selected from quinone derivatives or metal oxides, such as tungsten oxide and molybdenum oxide, but not limited thereto.
[0107] In a preferred embodiment of the present invention, the p-type doped material used is selected from any one of the following compounds P-1 to P-8:
[0108]
[0109] In one embodiment of the present invention, the ratio of the host organic material to the P-type doped material is 99:1-95:5, preferably 99:1-97:3, based on mass.
[0110] In a preferred embodiment of the present invention, the hole injection layer is a mixed film layer of the organic compound and the p-type doped material of the present invention.
[0111] The thickness of the hole injection layer of the present invention can be 5-20 nm, preferably 8-15 nm, but the thickness is not limited to this range.
[0112] Hole transport layer
[0113] In the organic electroluminescent device of the present invention, a hole transport layer may be disposed above a hole injection layer. The hole transport material is a suitable material having a high hole mobility, capable of accepting holes from the anode or hole injection layer and transporting the holes to the light-emitting layer. In a preferred embodiment, the hole transport layer comprises the organic compound of the present invention represented by the same general formula (1) as the hole injection layer.
[0114] The thickness of the hole transport layer of the present invention can be 80, 100 or 200 nm, preferably 100-150 nm, but the thickness is not limited to this range.
[0115] Electron blocking layer
[0116] In the organic electroluminescent device of the present invention, an electron blocking layer may be disposed between the hole transport layer and the light-emitting layer, and particularly in contact with the light-emitting layer. By disposing of the electron blocking layer in contact with the light-emitting layer, hole transfer at the interface between the light-emitting layer and the hole transport layer can be precisely controlled. In one embodiment of the present invention, the electron blocking layer material is selected from carbazole-based aromatic amine derivatives. The thickness of the electron blocking layer may be 5-20 nm, preferably 8-15 nm, but the thickness is not limited to this range.
[0117] Electronic transmission area
[0118] In the organic electroluminescent device of the present invention, the electron transport region is disposed between the light-emitting region and the cathode, and includes, but is not limited to, a hole blocking layer, an electron transport layer and an electron injection layer.
[0119] Electron injection layer
[0120] An electron injection layer may be disposed between the electron transport layer and the cathode. The electron injection layer material is typically preferably a material with a low work function, allowing electrons to be easily injected into the organic functional material layer. Preferably, the electron injection layer material is an N-type metal. As the electron injection layer material for the organic electroluminescent device of the present invention, electron injection layer materials known in the art for organic electroluminescent devices can be used, such as lithium; lithium salts, such as lithium 8-hydroxyquinoline, lithium fluoride, lithium carbonate, or lithium azide; or cesium salts, such as cesium fluoride, cesium carbonate, or cesium azide. The thickness of the electron injection layer of the present invention may be 0.1-5 nm, preferably 0.5-3 nm, and more preferably 0.8-1.5 nm, but the thickness is not limited to this range.
[0121] Electron transport layer
[0122] An electron transport layer may be disposed above the light-emitting film layer or (if present) a hole-blocking layer. The electron transport layer material is one that readily receives electrons from the cathode and transfers the received electrons to the light-emitting layer. A material with high electron mobility is preferred. As the electron transport layer of the organic electroluminescent device of the present invention, electron transport layer materials known in the prior art for organic electroluminescent devices can be used, such as metal complexes of hydroxyquinoline derivatives represented by Alq3, BAlq and LiQ, various rare earth metal complexes, triazole derivatives, triazine derivatives such as 2,4-bis(9,9-dimethyl-9H-fluoren-2-yl)-6-(naphth-2-yl)-1,3,5-triazine (CAS No.: 1459162-51-6), imidazole derivatives such as 2-(4-(9,10-bis(naphth-2-yl)anthracene-2-yl)phenyl)-1-phenyl-1H-benzo[d]imidazole (CAS No.: 561064-11-7, commonly known as LG201), oxadiazole derivatives, etc.
[0123] In a preferred embodiment of the invention, the electron transport layer further includes other compounds conventionally used in electron transport layers, such as Alq3, LiQ, preferably LiQ.
[0124] The thickness of the electron transport layer of the present invention can be 10-80 nm, preferably 20-60 nm, and more preferably 25-45 nm, but the thickness is not limited to this range.
[0125] Cover layer
[0126] To improve the light extraction efficiency of organic electroluminescent devices, a light extraction layer (CPL layer, also known as a capping layer) can be added to the cathode of the device. According to the principles of optical absorption and refraction, the CPL capping layer material should have a higher refractive index and a lower absorption coefficient. Any material known in the art can be used as the CPL layer material, such as Alq3 or N4,N4'-diphenyl-N4,N4'-di(9-phenyl-3-carbazolyl)biphenyl-4,4'-diamine. The thickness of the CPL capping layer is typically 5-300 nm, preferably 20-100 nm, and more preferably 40-80 nm.
[0127] The organic electroluminescent device of the present invention may further include an encapsulation structure. The encapsulation structure may be a protective structure preventing external substances such as moisture and oxygen from entering the organic layer of the organic electroluminescent device. The encapsulation structure may be, for example, a can, such as a glass or metal can; or a thin film covering the entire surface of the organic layer.
[0128] This invention discloses a method for fabricating organic electroluminescent devices, comprising sequentially laminating an anode, a hole injection layer, a hole transport layer, an electron blocking layer, an organic film layer, an electron transport layer, an electron injection layer, and a cathode, and optionally a capping layer, onto a substrate. In this regard, methods such as vacuum deposition, vacuum evaporation, spin coating, casting, LB method, inkjet printing, laser printing, or LITI can be used, but are not limited thereto. In this invention, vacuum evaporation is preferably used to form the various layers. Those skilled in the art can conventionally select the various process conditions in the vacuum evaporation method according to actual needs.
[0129] Synthesis Examples
[0130] Example 1: Synthesis of intermediate K-1
[0131] Step (1)
[0132] Step (2)
[0133] (1) In a three-necked flask, under nitrogen protection, add 0.01 mol of raw material A-1, 0.012 mol of raw material B-1, and 150 ml of toluene and stir to mix. Then add 5 × 10⁻⁶ ml of toluene. -5 mol Pd2(dba)3, 5×10 -5 0.03 mol of tri-tert-butylphosphine and 0.03 mol of sodium tert-butoxide were heated to 105 °C and refluxed for 18 hours. A sample was taken and spotted onto a TLC plate, showing no remaining amine compounds, indicating that the reaction was complete. The mixture was allowed to cool naturally to room temperature, filtered, and the filtrate was rotary evaporated until no fraction remained. The filtrate was then passed through a neutral silica gel column to obtain intermediate C-1.
[0134] (2) Under a nitrogen atmosphere, 0.06 mol of intermediate C-1 was added to a three-necked flask and dissolved in a mixed solvent (300 ml toluene, 90 ml H2O). The mixture was stirred under nitrogen for 1 hour, and then 0.05 mol of starting material D-1, 0.1 mol of K2CO3, and 0.005 mol of Pd(PPh3)4 were slowly added. The mixture was heated to 90 °C and reacted for 8 hours. The reaction was observed using thin-layer chromatography (TLC) until complete. After naturally cooling to room temperature, water was added to the reaction system for extraction. The mixture was separated, and the organic phase was rotary evaporated under reduced pressure until no fraction was obtained. The obtained substance was purified by silica gel column chromatography to obtain intermediate K-1.
[0135] Example 2: Synthesis of intermediate K-2
[0136] Step (1)
[0137] Add 0.01 mol intermediate K-1, 0.02 mol pinacol diboronate (raw material N), 0.03 mol potassium acetate, and 5 × 10⁻⁶ mol of sodium biborate to a three-necked flask in sequence. -5mol Pd(dppf)Cl2 and 100 mL 1,4-dioxane were stirred and mixed, heated to 80 °C, and reacted for 6 hours. A sample was taken and spotted on a TLC plate, showing that no intermediate K-1 remained, indicating that the reaction was complete. After naturally cooling to room temperature, water was added and a solid precipitated. The mixture was filtered, and the filter cake was dried in a vacuum drying oven and then passed through a neutral silica gel column to obtain the borate ester intermediate S-1.
[0138] Step (2)
[0139] Under a nitrogen atmosphere, 0.06 mol of starting material B-2 was added to a three-necked flask and dissolved in a mixed solvent (300 ml toluene, 90 ml H2O). The mixture was stirred under nitrogen for 1 hour, and then 0.05 mol of intermediate S-1, 0.1 mol of K2CO3, and 0.005 mol of Pd(PPh3)4 were slowly added. The mixture was heated to 90 °C and reacted for 8 hours. The reaction was observed using thin-layer chromatography (TLC) until complete. After natural cooling to room temperature, water was added to the reaction system for extraction, and the mixture was separated. The organic phase was then rotary evaporated under reduced pressure until no fraction was obtained. The resulting substance was purified by silica gel column chromatography to obtain intermediate K-2.
[0140] The following intermediates were prepared using a method similar to that in Example 1, as shown in Table 1 below.
[0141] Table 1
[0142]
[0143] Example 2: Synthesis of intermediate K-4
[0144]
[0145] In a three-necked flask, under nitrogen protection, add 0.024 mol of raw material A-1, 0.01 mol of raw material B-3, and 150 ml of toluene, and stir to mix. Then add 5 × 10⁻⁶ ml of toluene. -5 mol Pd2(dba)3, 5×10 -5 0.03 mol of tri-tert-butylphosphine and 0.03 mol of sodium tert-butoxide were heated to 105 °C and refluxed for 20 hours. A sample was taken and spotted onto a TLC plate, showing no remaining amine compounds, indicating that the reaction was complete. The mixture was allowed to cool naturally to room temperature, filtered, and the filtrate was rotary evaporated until no fraction remained. The filtrate was then passed through a neutral silica gel column to obtain intermediate K-4.
[0146] Example 3: Synthesis of Compound 1
[0147]
[0148] In a three-necked flask under nitrogen protection, 0.01 mol of starting material E-1, 0.012 mol of intermediate K-1, and 150 ml of toluene were added and stirred. Then, 5 × 10⁻⁵ mol of Pd₂(dba)₃, 5 × 10⁻⁵ mol of tri-tert-butylphosphine, and 0.03 mol of sodium tert-butoxide were added. The mixture was heated to 105 °C and refluxed for 24 hours. A TLC sample was taken, showing no remaining amine compounds, indicating complete reaction. After natural cooling to room temperature, the mixture was filtered, and the filtrate was rotary evaporated until no fraction remained. The filtrate was then passed through a neutral silica gel column to obtain compound 1. Elemental analysis and structure (molecular formula C₁₀) are also provided. 50 H 44 N2): Test values: C, 89.24; H, 6.56; N, 4.19. LC-MS: Measured value: 673.48 ([M+H]+).
[0149] The following compounds were prepared using a method similar to that in Example 3, as shown in Table 2 below:
[0150] Table 2
[0151]
[0152]
[0153] Example 4: Synthesis of Compound 179
[0154]
[0155]
[0156] In a three-necked flask, under nitrogen protection, add 0.01 mol of raw material A-1, 0.012 mol of raw material B-4, and 150 ml of toluene, and stir to mix. Then add 5 × 10⁻⁶ ml of toluene. -5 mol Pd2(dba)3, 5×10 -5 0.03 mol of tri-tert-butylphosphine and 0.03 mol of sodium tert-butoxide were heated to 105 °C and refluxed for 17 hours. A sample was taken and spotted onto a TLC plate, showing no remaining amine compounds, indicating that the reaction was complete. The mixture was allowed to cool naturally to room temperature, filtered, and the filtrate was rotary evaporated until no fraction remained. The filtrate was then passed through a neutral silica gel column to obtain intermediate C-2.
[0157] In a three-necked flask, under nitrogen protection, add 0.01 mol of raw material F-1, 0.012 mol of intermediate C-2, and 150 ml of toluene, and stir to mix. Then add 5 × 10⁻⁶ ml of toluene. -5 mol Pd2(dba)3, 5×10 -5 0.03 mol of tri-tert-butylphosphine and 0.03 mol of sodium tert-butoxide were heated to 105 °C and refluxed for 18 hours. A sample was taken and spotted onto a TLC plate, showing no remaining amine compounds, indicating that the reaction was complete. The mixture was allowed to cool naturally to room temperature, filtered, and the filtrate was rotary evaporated until no fraction remained. The filtrate was then passed through a neutral silica gel column to obtain intermediate M-1.
[0158] In a three-necked flask, under nitrogen protection, add 0.01 mol of raw material E-8, 0.012 mol of intermediate M-1, and 150 ml of toluene, and stir to mix. Then add 5 × 10⁻⁶ ml of toluene. -5 mol Pd2(dba)3, 5×10 -5 0.03 mol of tri-tert-butylphosphine and 0.03 mol of sodium tert-butoxide were heated to 110 °C and refluxed for 22 hours. A TLC sample was taken, showing no remaining amine compounds, indicating complete reaction. The mixture was allowed to cool naturally to room temperature, filtered, and the filtrate was rotary evaporated until no fraction remained. The filtrate was then passed through a neutral silica gel column to give compound 179. Elemental analysis of the structure (molecular formula C) is required. 63 H 51 N3): Test values: C, 89.05; H, 6.03; N, 4.91. LC-MS: Measured value: 850.33 ([M+H]+).
[0159] The following compounds were prepared using a method similar to that in Example 4, as shown in Table 3 below, wherein the raw materials A-1 and B-4 used were the same as in Example 4.
[0160] Table 3
[0161]
[0162]
[0163] Example 5: Synthesis of Compound 248
[0164] Step (1)
[0165] Step (2)
[0166] Step (3)
[0167] Step (4)
[0168] (1) In a three-necked flask, under nitrogen protection, add 0.01 mol of raw material A-2, 0.012 mol of raw material B-5, and 150 ml of toluene and stir to mix. Then add 5 × 10⁻⁶ ml of toluene. -5 mol Pd2(dba) 3 5×10 -5 0.03 mol of tri-tert-butylphosphine and 0.03 mol of sodium tert-butoxide were heated to 105 °C and refluxed for 20 hours. A sample was taken and spotted onto a TLC plate, showing no remaining amine compounds, indicating that the reaction was complete. The mixture was allowed to cool naturally to room temperature, filtered, and the filtrate was rotary evaporated until no fraction remained. The filtrate was then passed through a neutral silica gel column to obtain intermediate P-1.
[0169] (2) Under a nitrogen atmosphere, 0.06 mol of raw material H-1 was added to a three-necked flask and dissolved in a mixed solvent (300 ml toluene, 90 ml H2O). The mixture was stirred under nitrogen for 1 hour, and then 0.05 mol of intermediate P-1, 0.1 mol of K2CO3, and 0.005 mol of Pd(PPh3)4 were slowly added. The mixture was heated to 90 °C and reacted for 8 hours. The reaction was observed using thin-layer chromatography (TLC) until complete. After naturally cooling to room temperature, water was added to the reaction system for extraction. The mixture was separated, and the organic phase was rotary evaporated under reduced pressure until no fraction was obtained. The obtained substance was purified by silica gel column chromatography to obtain intermediate R-1.
[0170] (3) Under a nitrogen atmosphere, 0.06 mol of raw material D-1 was added to a three-necked flask and dissolved in a mixed solvent (300 ml toluene, 90 ml H2O). The mixture was stirred under nitrogen for 1 hour, and then 0.05 mol of intermediate R-1, 0.1 mol of K2CO3, and 0.005 mol of Pd(PPh3)4 were slowly added. The mixture was heated to 90 °C and reacted for 10 hours. The reaction was observed using thin-layer chromatography (TLC) until it was complete. After naturally cooling to room temperature, water was added to the reaction system for extraction. The mixture was separated, and the organic phase was rotary evaporated under reduced pressure until no fraction was obtained. The obtained substance was purified by silica gel column chromatography to obtain intermediate J-1.
[0171] (4) In a three-necked flask, under nitrogen protection, add 0.01 mol of raw material E-9, 0.012 mol of intermediate J-1, and 150 ml of toluene and stir to mix. Then add 5 × 10⁻⁶ ml of toluene. -5 mol Pd2(dba) 3 5×10 -5 0.03 mol of tri-tert-butylphosphine and 0.03 mol of sodium tert-butoxide were heated to 105 °C and refluxed for 23 hours. A TLC sample was taken, showing no remaining amine compounds, indicating complete reaction. The mixture was allowed to cool naturally to room temperature, filtered, and the filtrate was rotary evaporated until no fraction remained. The filtrate was then passed through a neutral silica gel column to give compound 248. Elemental analysis of the structure (molecular formula C) is required. 56 H 48 N2): Test values: C, 89.83; H, 6.47; N, 3.71. LC-MS: Measured value: 749.14 ([M+H]+).
[0172] The following compounds were prepared using a method similar to that in Example 5, as shown in Table 4 below. The raw material H-1 used in step (2) remained unchanged and is not given in the table below.
[0173] Table 4
[0174]
[0175] Fabrication of organic electroluminescent devices
[0176] The molecular structures of the materials involved in the following preparation process are shown below:
[0177]
[0178]
[0179] Device Comparison Example 1
[0180] Organic electroluminescent devices are prepared according to the following steps:
[0181] like Figure 1 As shown, substrate layer 1 is transparent glass. Anode layer 2 (Ag (100nm)) is washed sequentially with alkaline washing, pure water washing, drying, and then ultraviolet-ozone washing to remove organic residues from the surface of the anode layer. After the above washing, a hole injection layer 3 (HT-1 and P-1 with a mass ratio of 97:3) is deposited on anode layer 2 using a vacuum evaporation apparatus. Next, a hole transport layer 4 (HT-1 with a thickness of 117nm) is deposited. Then, an electron blocking layer 5 (EB-1 with a thickness of 10nm) is deposited. After the electron blocking material deposition, the light-emitting layer 6 of the OLED light-emitting device is fabricated. Its structure includes BH-1 as the host material and BD-1 as the dopant material, with a doping ratio of 3% by weight, and a light-emitting layer thickness of 20nm. After the light-emitting layer 6, HB-1 is deposited to a thickness of 8nm as the hole blocking layer 7. On top of the hole-blocking layer 7, ET-1 and Liq are further deposited by vacuum evaporation, with an ET-1 to Liq mass ratio of 1:1. The vacuum-deposited film thickness of this material is 30 nm, and this layer serves as the electron transport layer 8. On the electron transport layer 8, a LiF layer with a thickness of 1 nm is formed by vacuum evaporation, and this layer serves as the electron injection layer 9. On the electron injection layer 9, a Mg:Ag electrode layer with a thickness of 16 nm is formed by vacuum evaporation, with a Mg to Ag mass ratio of 1:9, and this layer serves as the cathode layer 10. On the cathode layer 10, a 65 nm layer of CP-1 is vacuum-deposited as the CPL layer 11.
[0182] Device Comparison Examples 2-6
[0183] The method was carried out according to the device comparison example 1, except that the organic materials in the hole injection layer and the hole transport layer were replaced with the organic materials shown in Table 5.
[0184] Device Examples 1-19
[0185] The method was carried out according to the device comparison example 1, except that the organic materials in the hole injection layer and hole transport layer were replaced with the organic materials shown in Table 5.
[0186] Table 5
[0187]
[0188]
[0189] Taking Example 1 as an example in the table above, "P-1:1=3:9710nm" in the second column indicates that the material used for the hole injection layer is Compound 1 and P-type dopant P-1, 3:97 refers to the weight ratio of P-type dopant to Compound 1 being 3:97, and 10nm represents the thickness of the layer; "1117nm" in the third column indicates that the material used is Compound 1, and the thickness of the layer is 117nm. The meanings in the other tables can be deduced similarly.
[0190] After fabricating the OLED light-emitting device as described above, the cathode and anode are connected using a known driving circuit, and various performance parameters of the device are measured.
[0191] The device measurement performance results of Examples 1-19 and Comparative Examples 1-6 are shown in Table 6.
[0192] Table 6
[0193]
[0194]
[0195] Note: Voltage, current efficiency, and color coordinates were measured using an IVL (current-voltage-luminance) testing system (Suzhou Fushida Scientific Instruments Co., Ltd.), with a current density of 10 mA / cm² during testing. 2 The lifetime testing system is the EAS-62C OLED device lifetime tester from System Technology Inc. of Japan. LT95 refers to the time it takes for the device brightness to decay to 95% at a specific brightness level. The high-temperature lifetime test temperature is 85℃, and LT80 refers to the time it takes for the device brightness to decay to 80% at a specific brightness level.
[0196] As can be seen from the results in Table 6, using the organic compound of the present invention as the hole transport layer material effectively improves device efficiency and device lifetime due to its high carrier transport rate, especially effectively improving device efficiency and high-temperature lifetime.
Claims
1. An organic compound, characterized in that, The structure of the organic compound is shown in general formula (1): In general formula (1), A is represented by formula (3) or formula (4). The B is represented by equation (2); The C is represented by formula (2), formula (3), formula (4) or a hydrogen atom; R1 and R3 are each independently represented as hydrogen atoms; R2 represents one of the following: hydrogen atom, substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted diphenyl, substituted or unsubstituted terphenyl, substituted or unsubstituted dibenzofuranyl, or substituted or unsubstituted dibenzothiopheneyl. In equations (2), (3) and (4), the curves represent the connection points with general equation (1); The L, L0 represents one of the following: a single bond, a substituted or substituted phenylene, a substituted or unsubstituted naphthylene, or a substituted or unsubstituted biphenylene. R0 represents a hydrogen atom; R4 represents one of substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, or substituted or unsubstituted diphenyl. R5 and R6 are respectively independently represented as one of substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted diphenyl, substituted or unsubstituted terphenyl, substituted or unsubstituted fluorenyl, and substituted or unsubstituted spirofluorenyl. When A is represented by equation (3), R1, R2, and R3 are not simultaneously represented as hydrogen atoms; The substituents of the aforementioned substituted or unsubstituted groups are selected from deuterium, methyl, deuterated methyl, ethyl, tert-butyl, phenyl, and naphthyl.
2. An organic compound, characterized in that, The structures of the organic compounds are shown in general formulas (1-1), (1-2), (1-3), and (1-4): General formula (1-1) General formula (1-2) General formula (1-3) General formula (1-4) In general formula (1-1), C represents a hydrogen atom; The L, L0 represents one of a single bond, a substituted or substituted phenylene, a substituted or unsubstituted naphthylene, or a substituted or unsubstituted biphenylene. R0 represents a hydrogen atom; R1 and R3 are each independently represented as hydrogen atoms; R2 represents one of the following: substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted diphenyl, substituted or unsubstituted triphenyl, substituted or unsubstituted dibenzofuranyl, or substituted or unsubstituted dibenzothiopheneyl. R1, R2, and R3 are not simultaneously represented as hydrogen atoms; R5 and R6 are respectively independently represented as one of substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted diphenyl, substituted or unsubstituted terphenyl, substituted or unsubstituted fluorenyl, and substituted or unsubstituted spirofluorenyl. In general formulas (1-2) and (1-3), L and L0 represent one of a single bond, a substituted or substituted phenylene, a substituted or unsubstituted naphthylene, or a substituted or unsubstituted biphenylene. R0, R1, R2, and R3 are each independently represented as hydrogen atoms; R5 and R6 are respectively independently represented as one of substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted diphenyl, substituted or unsubstituted terphenyl, substituted or unsubstituted fluorenyl, and substituted or unsubstituted spirofluorenyl. In general formulas (1-4), L represents one of a single bond, a substituted or substituted phenylene, a substituted or unsubstituted naphthylene, or a substituted or unsubstituted biphenylene; R1 and R3 are each independently represented as hydrogen atoms; R2 represents one of the following: hydrogen atom, substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted diphenyl, substituted or unsubstituted terphenyl, substituted or unsubstituted dibenzofuranyl, or substituted or unsubstituted dibenzothiopheneyl. R4 represents one of substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, or substituted or unsubstituted diphenyl. R5 and R6 are respectively independently represented as one of substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted diphenyl, substituted or unsubstituted terphenyl, substituted or unsubstituted fluorenyl, and substituted or unsubstituted spirofluorenyl. The substituents of the aforementioned substituted or unsubstituted groups are selected from deuterium, methyl, deuterated methyl, ethyl, tert-butyl, phenyl, and naphthyl.
3. An organic compound, characterized in that, The structures of the organic compounds are shown in general formulas (1-5), (1-6), (1-7), and (1-8): General formula (1-5) General formula (1-6) General formula (1-7) General formula (1-8) In general formulas (1-5), R3 represents one of substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted diphenyl, substituted or unsubstituted terphenyl, substituted or unsubstituted dibenzofuranyl, or substituted or unsubstituted dibenzothiopheneyl. The L, L0 represents one of a single bond, a substituted or substituted phenylene, a substituted or unsubstituted naphthylene, or a substituted or unsubstituted biphenylene. R0 represents a hydrogen atom; R5 and R6 are respectively independently represented as one of substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted diphenyl, substituted or unsubstituted terphenyl, substituted or unsubstituted fluorenyl, and substituted or unsubstituted spirofluorenyl. The substituents of the aforementioned substituted or unsubstituted groups are selected from deuterium, methyl, deuterated methyl, ethyl, tert-butyl, phenyl, and naphthyl. In general formulas (1-6) and (1-7), R3 represents a hydrogen atom; The L, L0 represents one of a single bond, a substituted or substituted phenylene, a substituted or unsubstituted naphthylene, or a substituted or unsubstituted biphenylene. R0 represents a hydrogen atom; R5 and R6 are respectively independently represented as one of substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted diphenyl, substituted or unsubstituted terphenyl, substituted or unsubstituted fluorenyl, and substituted or unsubstituted spirofluorenyl. The substituents of the aforementioned substituted or unsubstituted groups are selected from deuterium, methyl, deuterated methyl, ethyl, tert-butyl, phenyl, and naphthyl. In general formula (1-8), R2 represents a hydrogen atom, and R3 represents one of the following: substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted diphenyl, substituted or unsubstituted terphenyl, substituted or unsubstituted dibenzofuranyl, or substituted or unsubstituted dibenzothiopheneyl. The L represents one of a single bond, a substituted or substituted phenylene, a substituted or unsubstituted naphthylene, or a substituted or unsubstituted biphenylene; R4 represents one of substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, or substituted or unsubstituted diphenyl. R5 and R6 are respectively independently represented as one of substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted diphenyl, substituted or unsubstituted terphenyl, substituted or unsubstituted fluorenyl, and substituted or unsubstituted spirofluorenyl. The substituents of the aforementioned substituted or unsubstituted groups are selected from deuterium, methyl, deuterated methyl, ethyl, tert-butyl, phenyl, and naphthyl.
4. An organic compound, characterized in that, The structures of the organic compounds are shown in general formulas (1-9), (1-10), (1-11), and (1-12): General formula (1-9) General formula (1-10) General formula (1-11) General formula (1-12) In general formulas (1-9), L0 and L are respectively independently represented as a single bond, a substituted or substituted phenylene, a substituted or unsubstituted naphthylene, and a substituted or unsubstituted biphenylene. R3 represents one of the following: substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted diphenyl, substituted or unsubstituted triphenyl, substituted or unsubstituted dibenzofuranyl, or substituted or unsubstituted dibenzothiopheneyl. R5-R6 are each independently represented as one of the following: substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted diphenyl, substituted or unsubstituted terphenyl, substituted or unsubstituted fluorenyl, and substituted or unsubstituted spirofluorenyl. In general formulas (1-10), (1-11), and (1-12), L0 and L are respectively independently represented as a single bond, a substituted or substituted phenylene, a substituted or unsubstituted naphthylene, or a substituted or unsubstituted biphenylene. R3 represents one of the following: substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted diphenyl, substituted or unsubstituted triphenyl, substituted or unsubstituted dibenzofuranyl, or substituted or unsubstituted dibenzothiopheneyl. R4 represents one of substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, or substituted or unsubstituted diphenyl. R5-R6 are respectively independently represented as substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted diphenyl, substituted or unsubstituted terphenyl, substituted or unsubstituted fluorenyl, and substituted or unsubstituted spirofluorenyl. The substituents of the aforementioned substituted or substituted groups are selected from one or more of deuterium, methyl, deuterated methyl, ethyl, tert-butyl, phenyl, and naphthyl.
5. The organic compound according to claim 1, characterized in that, The L0 and L are independently represented as single-bonded, substituted, or substituted phenylene groups; R0, R1, and R3 represent hydrogen atoms; R2 represents one of the following: hydrogen atom, substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted diphenyl, substituted or unsubstituted terphenyl, substituted or unsubstituted dibenzofuranyl, or substituted or unsubstituted dibenzothiopheneyl. R4 represents one of substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, or substituted or unsubstituted diphenyl. R5 and R6 represent one of the following: substituted or unsubstituted phenyl, substituted or unsubstituted naphthyl, substituted or unsubstituted diphenyl, substituted or unsubstituted terphenyl, substituted or unsubstituted fluorenyl, and substituted or unsubstituted spirofluorenyl. The substituents of the aforementioned substituted or substituted groups are selected from one or more of deuterium, methyl, deuterated methyl, ethyl, tert-butyl, phenyl, and naphthyl.
6. The organic compound according to claim 1, characterized in that, Equation (2) can be represented by any of the following structures: 、 、 、 、 、 、 、 、 、 、 、 、 、 、 、 、 、 、 、 、 、 、 ; Equation (3) can be represented by any of the following structures: 、 、 Equation (4) can be represented by any of the following structures: 。 7. An organic compound, characterized in that, The organic compound has a specific structure that is any one of the following: (1) (2) (3) (4) (5) (6) (7) (8) (9) (12) (13) (14) (15) (16) (17) (18) (19) (22) (23) (24) (25) (26) (27) (28) (29) (36) (37) (38) (39) (40) (41) (42) (43) (48) (49) (50) (51) (52) (53) (54) (55) (56) (57) (58) (59) (62) (63) (64) (69) (72) (73) (74) (75) (76) (77) (78) (83) (84) (85) (86) (87) (88) (89) (90) (91) (92) (93) (94) (95) (96) (97) (98) (99) (100) (101) (102) (103) (104) (105) (106) (107) (108) (109) (110) (111) (112) (113) (114) (115) (116) (117) (118) (119) (120) (121) (122) (123) (124) (126) (127) (128) (129) (130) (131) (132) (133) (136) (137) (138) (139) (140) (141) (142) (143) (144) (145) (146) (147) (148) (149) (150) (151) (152) (153) (154) (155) (165) (166) (169) (170) (171) (172) (175) (176) (177) (178) (179) (180) (181) (182) (183) (184) (185) (186) (187) (188) (189) (192) (193) (194) (195) (196) (197) (198) (199) (200) (201) (202) (203) (204) (205) (206) (207) (208) (209) (210) (211) (212) (213) (214) (215) (216) (217) (218) (219) (220) (221) (222) (223) (224) (225) (226) (227) (228) (229) (236) (237) (238) (239) (240) (241) (242) (244) (245) (246) (247) (248) (249) (250) (251) (252) (253) (254) (255) (256) (257) (258) (259) (260) (261) (262) (263) (264) (265) (270) (278) (282) (283) (284) (285) (286) (287) (289) (290) (291) (292) (296) (297) (298) (299) (300) (301) (303) (304) (307) (308) (309) (310) (311) (312) (315) (316) (317) (318) (319) (320) (321) (322) (323) (324)。 8. An organic electroluminescent device, comprising, in sequence, an anode, a hole transport region, a light-emitting region, an electron transport region, and a cathode, characterized in that, The hole transport region comprises any one of the organic compounds according to claims 1-7.
9. The organic electroluminescent device according to claim 8, characterized in that, The hole transport region includes a hole injection layer, a hole transport layer, and an electron blocking layer, wherein the hole transport layer comprises an organic compound as described in any one of claims 1-7.
10. A lighting or display element, characterized in that, The lighting or display element comprises the organic electroluminescent device as described in claims 8-9.