Ancillary Ligands for Organometallic Complexes

Novel ancillary ligands for metal complexes in OLEDs address the challenge of achieving saturated colors and efficiency by narrowing the emission spectrum and improving device performance.

JP7732140B2Active Publication Date: 2025-09-02UNIVERSAL DISPLAY CORP
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Patent Information

Application Number
JP2023154037
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2013-07-01
Filing Date
2023-09-21
Publication Date
2025-09-02
Estimated Expiration
2034-06-30

AI Technical Summary

Technical Problem

Existing organic light-emitting diodes (OLEDs) face challenges in achieving saturated colors, particularly in red, green, and blue pixels, and require improvements in emission spectrum control and device efficiency.

Method used

Incorporation of novel ancillary ligands for metal complexes, such as iridium complexes, which narrow the emission spectrum and improve deposition temperatures and device efficiency.

Benefits of technology

The inclusion of these ligands enhances the color spectra of phosphorescence emitted by iridium complexes, leading to improved device efficiency and performance.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide ancillary ligands for organometallic complexes suitable for use as emitters in organic light emitting devices.SOLUTION: A compound comprises a first ligand L1 having the formula I in the figure, the first ligand L1 is coordinated to a metal M having an atomic number greater than 40. In the formula, R1, R2, R3 and R4 are independently selected from group consisting of alkyl, cycloalkyl, aryl and heteroaryl; and R5 is selected from group consisting of hydrogen, deuterium, halide, alkyl, cycloalkyl, alkoxy, amino, silyl and the like and combinations thereof; where two adjacent substituents are optionally joined to form into a ring.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The claimed invention was made by, for the benefit of, and / or in connection with one or more of the following parties to a university-corporation collaborative research agreement: University of Michigan, Princeton University, University of Southern California, and the Regents of Universal Display Corporation, which agreement was in effect on or before the date the claimed invention was made, and the claimed invention was made as a result of activities conducted within the scope of said agreement.

[0002] The present invention relates to compounds for use as light emitters and devices, such as organic light emitting diodes, that include the compounds. More particularly, the compounds disclosed herein are novel ancillary ligands for metal complexes. [Background technology]

[0003] Optoelectronic devices utilizing organic materials are becoming increasingly desirable for several reasons. Because many of the materials used to fabricate such devices are relatively inexpensive, organic optoelectronic devices have the potential for cost advantages over inorganic devices. In addition, the inherent properties of organic materials, such as flexibility, may make them well suited for specific applications, such as fabrication on flexible substrates. Examples of organic optoelectronic devices include organic light-emitting devices (OLEDs), organic phototransistors, organic photovoltaic cells, and organic photodetectors. For OLEDs, organic materials may have performance advantages over conventional materials. For example, the wavelength at which an organic light-emitting layer emits light can generally be easily tuned with appropriate dopants.

[0004] OLEDs utilize thin organic films that emit light when a voltage is applied across the device. OLEDs are becoming an increasingly interesting technology for use in applications such as flat panel displays, illumination, and backlighting. Several OLED materials and configurations are described in U.S. Patent Nos. 5,623,999; 5,723,999; and 5,723,999, which are incorporated herein by reference in their entireties.

[0005] One application of phosphorescent molecules is in full-color displays. Industry standards for such displays require pixels adapted to emit specific colors, referred to as "saturated" colors. In particular, these standards require saturated red, green, and blue pixels. Color can be measured using CIE coordinates, which are well known in the art.

[0006] An example of a green emitting molecule has the following structure: [ka] The compound is tris(2-phenylpyridine)iridium, denoted as Ir(ppy)3, having the formula:

[0007] In this figure and later figures herein, we depict the coordination bond from nitrogen to the metal (here Ir) as a straight line.

[0008] As used herein, the term "organic" includes polymeric and small molecule organic materials that can be used to fabricate organic optoelectronic devices. "Small molecule" refers to any organic material that is not a polymer, and "small molecules" can actually be quite large. Small molecules can contain repeating units in some circumstances. For example, using a long-chain alkyl group as a substituent does not remove a molecule from the "small molecule" class. Small molecules can be incorporated into polymers, for example, as pendant groups on a polymer backbone or as part of the backbone. Small molecules can also serve as the core moiety of dendrimers, which consist of a series of chemical shells built on the core moiety. The core moiety of a dendrimer can be a fluorescent or phosphorescent small molecule emitter. Dendrimers can be "small molecules," and it is believed that all dendrimers currently used in the field of OLEDs are small molecules.

[0009] As used herein, "top" means furthest from the substrate, while "bottom" means closest to the substrate. When a first layer is described as "disposed over" a second layer, the first layer is disposed further from the substrate. There may be other layers between the first and second layers, unless it is specified that the first layer is "in contact with" the second layer. For example, a cathode may be described as "disposed over" an anode, even though there may be various organic layers in between.

[0010] As used herein, "solution processable" means capable of being dissolved, dispersed or transported in and / or deposited from a liquid medium, either in the form of a solution or suspension.

[0011] A ligand may be referred to as "photoactive" if it is considered to directly contribute to the photoactive properties of the emissive material. A ligand may be referred to as "ancillary" if it is considered not to contribute to the photoactive properties of the emissive material, although the ancillary ligand may modify the properties of the photoactive ligand.

[0012] As used herein, and as would generally be understood by one of ordinary skill in the art, a first "highest occupied molecular orbital" (HOMO) or "lowest unoccupied molecular orbital" (LUMO) energy level is "greater than" or "higher than" a second HOMO or LUMO energy level if the first energy level is closer to the vacuum energy level. Because ionization potentials (IPs) are measured as negative energies relative to the vacuum level, a higher HOMO energy level corresponds to an IP with a smaller absolute value (a less negative IP). Similarly, a higher LUMO energy level corresponds to an electron affinity (EA) with a smaller absolute value (a less negative EA). On a conventional energy level diagram, with the vacuum level at the top, the LUMO energy level of a material is higher than the HOMO energy level of the same material. A "higher" HOMO or LUMO energy level appears closer to the top of such a diagram than a "lower" HOMO or LUMO energy level.

[0013] As used herein, and as will generally be understood by those skilled in the art, a first work function is "greater than" or "higher than" a second work function if the first work function has a higher absolute value. Because work functions are generally measured as negative numbers relative to vacuum level, this means that a "higher" work function is more negative. On a conventional energy level diagram, with the vacuum level at the top, a "higher" work function is illustrated as being farther away from the vacuum level in the downward direction. Thus, the definitions of HOMO and LUMO energy levels follow a different convention than work functions.

[0014] Further details on OLEDs and the above definitions can be found in US Pat. No. 6,223,999, which is incorporated herein by reference in its entirety. Summary of the Invention

[0015] According to one embodiment, the first ligand L has the following formula I: 1 wherein said first ligand L 1 is coordinated to a metal M having an atomic number greater than 40. [ka] In the formula, R 1 , R 2 , R 3 , and R 4 is independently selected from the group consisting of alkyl, cycloalkyl, aryl, and heteroaryl; R 1 , R 2 , R 3 , and R 4 at least one of has at least two C; 5 is selected from the group consisting of hydrogen, deuterium, halide, alkyl, cycloalkyl, heteroalkyl, arylalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aryl, heteroaryl, acyl, carbonyl, carboxylic acid, ester, nitrile, isonitrile, sulfanyl, sulfinyl, sulfonyl, phosphino, and combinations thereof; R 1 、R 2 、R 3 、R 4 , and R 5 does not bond or condense with other substituents to form a ring .

[0016] According to another aspect of the present disclosure, there is provided a first device comprising a first organic light-emitting device, the first organic light-emitting device comprising an anode, a cathode, and an organic layer disposed between the anode and the cathode, the organic layer comprising a first ligand L having formula I: 1 The first device may be a consumer product, an organic light emitting device, and / or a lighting panel.

[0017] The compounds disclosed herein are novel ancillary ligands for metal complexes. The inclusion of these ligands can narrow the emission spectrum, reduce deposition temperatures, and improve device efficiency. The inventors have found that the inclusion of these novel ancillary ligands in iridium complexes improves the sublimation of the resulting iridium complexes, the color spectra of the phosphorescence emitted by these iridium complexes, and their EQE. [Brief explanation of the drawings]

[0018] [Figure 1] FIG. 1 shows an organic light-emitting device.

[0019] [Figure 2] FIG. 2 shows an inverted organic light-emitting device that does not have a separate electron transport layer.

[0020] [Figure 3] FIG. 3 shows Formula I as disclosed herein. DETAILED DESCRIPTION OF THE INVENTION

[0021] Generally, an OLED comprises at least one organic layer disposed between and electrically connected to an anode and a cathode. When a current is applied, the anode injects holes and the cathode injects electrons into the organic layer(s). The injected holes and electrons migrate to the oppositely charged electrode, respectively. When an electron and hole localize on the same molecule, an "exciton," a localized electron-hole pair with an excited energy state, is formed. Light is emitted via a photoemissive mechanism when the exciton relaxes. In some cases, the exciton may be localized on an excimer or exciplex. Non-radiative mechanisms, such as thermal relaxation, can also occur but are generally considered undesirable.

[0022] Early OLEDs used emissive molecules that emitted light from their singlet state ("fluorescence"), as disclosed, for example, in U.S. Patent No. 4,769,292, which is incorporated by reference in its entirety. Fluorescence emission typically occurs in a time frame of less than 10 nanoseconds.

[0023] More recently, OLEDs have been demonstrated that have emissive materials that emit light from triplet states ("phosphorescence"). Baldo et al., "Highly Efficient Phosphorescent Emission from Organic Electroluminescent Devices," Vol. 395, No. 151-154, 1998; ("Baldo-I") and Baldo et al., "Very high-efficiency green organic light emitting devices based on electrophosphorescence," Appl. Phys. Lett., Vol. 75, No. 3, 4-6 (1999) ("Baldo-II"), which are incorporated by reference in their entireties. Phosphorescence is described in further detail in U.S. Pat. No. 7,279,704, columns 5-6, which are incorporated by reference.

[0024] FIG. 1 shows an organic light-emitting device 100. The drawing is not necessarily to scale. Device 100 may include a substrate 110, an anode 115, a hole-injection layer 120, a hole-transport layer 125, an electron-blocking layer 130, an emissive layer 135, a hole-blocking layer 140, an electron-transport layer 145, an electron-injection layer 150, a protective layer 155, a cathode 160, and a barrier layer 170. Cathode 160 is a compound cathode having a first conductive layer 162 and a second conductive layer 164. Device 100 may be fabricated by depositing the layers described, in order. The properties and functions of these various layers, as well as example materials, are described in further detail in U.S. Pat. No. 7,279,704, cols. 6-10, which is incorporated by reference.

[0025] Further examples are available for each of these layers. For example, a flexible and transparent substrate-anode combination is disclosed in U.S. Patent No. 5,844,363, which is incorporated by reference in its entirety. An example of a p-doped hole-transporting layer is m-MTDATA doped with F4-TCNQ at a molar ratio of 50:1, as disclosed in U.S. Patent Application Publication No. 2003 / 0230980, which is incorporated by reference in its entirety. Examples of emissive and host materials are disclosed in U.S. Patent No. 6,303,238 to Thompson et al., which is incorporated by reference in its entirety. An example of an n-doped electron-transporting layer is BPhen doped with Li at a molar ratio of 1:1, as disclosed in U.S. Patent Application Publication No. 2003 / 0230980, which is incorporated by reference in its entirety. U.S. Patent Nos. 5,703,436 and 5,707,745, which are incorporated by reference in their entireties, disclose examples of cathodes, including composite cathodes having a thin layer of metal, such as Mg:Ag, with an overlying transparent, conductive, sputter-deposited ITO layer. The theory and use of blocking layers are described in more detail in U.S. Patent No. 6,097,147 and U.S. Patent Application Publication No. 2003 / 0230980, which are incorporated by reference in their entireties. Examples of injection layers are provided in U.S. Patent Application Publication No. 2004 / 0174116, which is incorporated by reference in its entirety. A description of protective layers can be found in U.S. Patent Application Publication No. 2004 / 0174116, which is incorporated by reference in its entirety.

[0026] FIG. 2 shows an inverted OLED 200. The device includes a substrate 210, a cathode 215, an emissive layer 220, a hole-transport layer 225, and an anode 230. Device 200 can be fabricated by depositing the layers described, in order. Because the most common OLED configuration has the cathode disposed above the anode, and device 200 has cathode 215 disposed below anode 230, device 200 is sometimes referred to as an "inverted" OLED. Materials similar to those described with respect to device 100 may be used in the corresponding layers of device 200. FIG. 2 provides an example of how some layers can be omitted from the structure of device 100.

[0027] The simple layer structures illustrated in Figures 1 and 2 are provided as non-limiting examples, and it is understood that embodiments of the present invention can be used in conjunction with a wide variety of other structures. The specific materials and structures described are exemplary in nature, and other materials and structures may be used. A functional OLED may be achieved by combining the various layers described in various ways, or layers may be omitted entirely based on design, performance, and cost factors. Other layers not specifically described may also be included. Materials other than those specifically described may be used. While many of the examples provided herein describe various layers as including a single material, it is understood that combinations of materials, such as mixtures of hosts and dopants, or more generally, mixtures, may be used. Layers may also have various sublayers. The names given to the various layers herein are not intended to be strictly limiting. For example, in device 200, hole-transport layer 225 transports holes and injects holes into emissive layer 220 and may be described as a hole-transport layer or a hole-injection layer. In one embodiment, an OLED may be described as having an "organic layer" disposed between a cathode and an anode. The organic layer may comprise a single layer, or may further comprise multiple layers of different organic materials, for example, as described with respect to Figures 1 and 2.

[0028] Structures and materials not specifically described may also be used, such as OLEDs (PLEDs) composed of polymeric materials, such as those disclosed in U.S. Pat. No. 5,247,190 to Friend et al., which is incorporated by reference in its entirety. As a further example, an OLED having a single organic layer may be used. OLEDs may be stacked, for example, as described in U.S. Pat. No. 5,707,745 to Forrest et al., which is incorporated by reference in its entirety. OLED structures may deviate from the simple layered structures illustrated in FIGS. 1 and 2. For example, the substrate may include angled reflective surfaces to improve outcoupling, such as mesa structures as described in U.S. Pat. No. 6,091,195 to Forrest et al. and / or recessed structures as described in U.S. Pat. No. 5,834,893 to Bulovic et al., which are incorporated by reference in their entirety.

[0029] Unless otherwise specified, any of the layers of the various embodiments can be deposited by any suitable method. For organic layers, preferred methods include deposition by thermal evaporation, such as those described in U.S. Pat. Nos. 6,013,982 and 6,087,196, which are incorporated by reference in their entireties; inkjet deposition; organic vapor phase deposition (OVPD), such as that described in U.S. Pat. No. 6,337,102 to Forrest et al., which is incorporated by reference in its entirety; and organic vapor jet printing (OVJP), such as that described in U.S. Pat. No. 7,431,968, which is incorporated by reference in its entirety. Other suitable deposition methods include spin-coating and other solution-based processes. Solution-based processes are preferably performed in a nitrogen or inert atmosphere. For other layers, preferred methods include thermal evaporation. Preferred patterning methods include deposition via masks, such as those described in U.S. Patent Nos. 6,294,398 and 6,468,819, which are incorporated by reference in their entireties, deposition via cold welding, and patterning associated with some deposition methods, such as inkjet and OVJD. Other methods may also be used. The material to be deposited may be modified to be compatible with a particular deposition method. For example, substituents such as alkyl and aryl groups, branched or unbranched, and preferably containing at least three carbons, may be used in small molecules to enhance their ability to undergo solution processing. Substituents with 20 or more carbons may be used, with 3 to 20 carbons being a preferred range. Materials with asymmetric structures may have better solution processability than those with symmetric structures, because asymmetric materials may be less prone to recrystallization. Dendrimer substituents may be used to enhance the ability of small molecules to undergo solution processing.

[0030] Devices fabricated according to embodiments of the present invention may further include a barrier layer. One purpose of the barrier layer is to protect the electrodes and organic layers from damaging exposure to harmful species in the environment, including moisture, vapors, and / or gases. The barrier layer may be deposited over, under, or adjacent to the substrate, the electrode, or any other portion of the device, including the edges. The barrier layer may include a single layer or multiple layers. The barrier layer may be formed by various known chemical vapor deposition techniques and may include compositions having a single phase and compositions having multiple phases. Any suitable material or combination of materials may be used for the barrier layer. The barrier layer may incorporate inorganic or organic compounds, or both. Preferred barrier layers include mixtures of polymeric and non-polymeric materials, as described in U.S. Pat. No. 7,968,146 and PCT Patent Application Nos. PCT / US2007 / 023098 and PCT / US2009 / 042829, which are incorporated herein by reference in their entireties. To be considered a "mixture," the polymeric and non-polymeric materials comprising the barrier layer should be deposited under the same reaction conditions and / or simultaneously. The weight ratio of polymeric to non-polymeric materials can be in the range of 95:5 to 5:95. The polymeric and non-polymeric materials can be made from the same precursor materials. In one example, the mixture of polymeric and non-polymeric materials consists essentially of polymeric silicon and inorganic silicon.

[0031] Devices fabricated in accordance with embodiments of the present invention may be incorporated into a wide variety of consumer products, including flat panel displays, computer monitors, televisions, billboards, lights for indoor or outdoor illumination and / or signaling, heads-up displays, fully transparent displays, flexible displays, laser printers, telephones, mobile phones, personal digital assistants (PDAs), laptop computers, digital cameras, camcorders, viewfinders, microdisplays, 3-D displays, cars, large area walls, theater or stadium screens, or billboards. A variety of control mechanisms, including passive matrix and active matrix, can be used to control devices fabricated in accordance with the present invention. Many of the devices are intended for use within a temperature range comfortable to humans, such as 18°C ​​to 30°C, and more preferably room temperature (20-25°C), although they can also be used outside this temperature range, e.g., between -40°C and +80°C.

[0032] The materials and structures described herein may have applications in devices other than OLEDs. For example, other optoelectronic devices such as organic solar cells and organic photodetectors may use the materials and structures. More generally, organic devices such as organic transistors may use the materials and structures.

[0033] The terms halo, halogen, alkyl, cycloalkyl, alkenyl, alkynyl, aralkyl, heterocyclic, aryl, aromatic, and heteroaryl are known in the art and are defined in U.S. Pat. No. 7,279,704, columns 31-32, which is incorporated herein by reference.

[0034] As used herein, "substituted" indicates that a substituent other than H is attached to the associated carbon. 2 If is monosubstituted, then R 2 One of the substitution positions of R must be other than H. Similarly, 3 When is disubstituted, R 3 Two of the substitution positions of R must be other than H. Similarly, 2If is unsubstituted, then R 2 is hydrogen at all substitution positions.

[0035] According to one embodiment, novel ancillary ligands for metal complexes are disclosed, and the inventors have discovered that the inclusion of these ligands unexpectedly narrows the emission spectrum, reduces deposition temperatures, and improves device efficiency.

[0036] According to one embodiment, the first ligand L has the following formula I: 1 wherein said first ligand L 1 is coordinated to a metal M having an atomic number greater than 40. [ka] In the formula, R 1 , R 2 , R 3 , and R 4 is independently selected from the group consisting of alkyl, cycloalkyl, aryl, and heteroaryl; R 1 , R 2 , R 3 , and R 4 at least one of has at least two C; 5 is selected from the group consisting of hydrogen, deuterium, halide, alkyl, cycloalkyl, heteroalkyl, arylalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aryl, heteroaryl, acyl, carbonyl, carboxylic acid, ester, nitrile, isonitrile, sulfanyl, sulfinyl, sulfonyl, phosphino, and combinations thereof; R 1 、R 2 、R 3 、R 4 , and R 5 does not bond or condense with other substituents to form a ring The dashed line in Formula I indicates the point of attachment to the metal.

[0037] In one embodiment, the metal M is Ir. In one embodiment, R 5 is selected from the group consisting of hydrogen, deuterium, alkyl, cycloalkyl, and combinations thereof. 5 is hydrogen.

[0038] In other embodiments, R 1 , R 2 , R 3 , and R 4 is alkyl or cycloalkyl. In one embodiment, R 1 , R 2 , R 3 , and R 4 is selected from the group consisting of methyl, ethyl, propyl, 1-methylethyl, butyl, 1-methylpropyl, 2-methylpropyl, pentyl, 1-methylbutyl, 2-methylbutyl, 3-methylbutyl, 1,1-dimethylpropyl, 1,2-dimethylpropyl, 2,2-dimethylpropyl, cyclopentyl, cyclohexyl, partially or fully deuterated variants thereof, and combinations thereof.

[0039] In one embodiment, the compound is M(L 1 ) x (L 2 ) y (L 3 ) z wherein L 2 is the second ligand, and L 3 is the third ligand, and L 2 and L 3 may be the same or different; x is 1, 2, or 3; y is 0, 1, or 2; z is 0, 1, or 2; and x+y+z is the oxidation state of the metal M.

[0040] In one embodiment, L 2 and L 3 are independently selected from the group consisting of: [ka] [ka] In the formula, R a , R b , R c , and R d represents mono-, di-, tri-, or tetra-substituted or is unsubstituted; R a , R b , R c , and R d is independently selected from the group consisting of hydrogen, deuterium, halide, alkyl, cycloalkyl, heteroalkyl, arylalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aryl, heteroaryl, acyl, carbonyl, carboxylic acid, ester, nitrile, isonitrile, sulfanyl, sulfinyl, sulfonyl, phosphino, and combinations thereof; R a , R b , R c , and R d Two adjacent substituents of L may be linked to form a fused ring or a multidentate ligand. 3 L 2 and the compound is identical to M(L 1 )(L 2 )2.

[0041] The compound is M(L 1 ) x (L 2 ) y (L 3 ) z In other embodiments having the formula 1 is selected from the group consisting of: [ka]

[0042] In one embodiment, the second ligand L 2 is selected from the group consisting of: [ka] [ka] [ka] [ka] [ka] [ka] [ka] [ka]

[0043] In one embodiment, the formula M(L 1 )(L 2 The compound having 2 can be selected from the group consisting of Compounds 1 to 1729 defined in Table 1 below. [Table 1-1] [Table 1-2] [Table 1-3] [Table 1-4] [Table 1-5] [Table 1-6] [Table 1-7] [Table 1-8] [Table 1-9] [Table 1-10] [Table 1-11] [Table 1-12]

[0044] In one embodiment, the first ligand L having formula I as defined herein is 1 The compound comprising may be selected from the group consisting of: [ka]

[0045] According to another aspect of the present disclosure, there is provided a first device comprising a first organic light-emitting device, the first organic light-emitting device comprising an anode, a cathode, and an organic layer disposed between the anode and the cathode, the organic layer comprising a first ligand L having Formula I, as defined herein. 1 The compound may include a compound comprising:

[0046] In one embodiment, the compound can be selected from the group consisting of Compound 8, Compound 9, Compound 12, Compound 32, Compound 43, Compound 54, Compound 55, Compound 62, Compound 83, Compound 93, Compound 118, Compound 141, Compound 142, Compound 176, Compound 278, and Compound 320.

[0047] The first device can be one or more of a consumer product, an organic light emitting device, and / or a lighting panel.

[0048] In some embodiments, the organic layer can be an emissive layer and the compound can be an emissive dopant, and in other embodiments, the compound can be a non-emissive dopant.

[0049] The organic layer can also include a host. In some embodiments, the host can include a metal complex. In one embodiment, the host can be a metal 8-hydroxyquinolate. The host can be a triphenylene containing benzo-fused thiophene or benzo-fused furan. Any of the substituents on the host can be C n H 2n+1 , O.C. n H 2n+1 , OAr1, N(C n H 2n+1 )2, N(Ar1)(Ar2), CH=CH-C n H 2n+1 , C≡CC n H 2n+1 , Ar1, Ar1-Ar2, and C n H 2n -Ar1 is a non-fused substituent independently selected from the group consisting of Ar1, Ar2, Ar3, Ar4, Ar5, Ar6, Ar7, Ar8, Ar9, Ar10, Ar11, Ar12, Ar13, Ar14, Ar15, Ar16, Ar17, Ar18, Ar19, Ar20, Ar21, Ar22, Ar23, Ar24, Ar25, Ar26, Ar27, Ar28, Ar29, Ar21, Ar21, Ar21, Ar22, Ar23, Ar24, Ar25, Ar26, Ar27, Ar28, Ar29 ...9, Ar21, Ar21, Ar22, Ar23, Ar24, Ar25, Ar26, Ar27, Ar28, Ar29, Ar29, Ar29, Ar21, Ar21, Ar22, Ar23, Ar24, Ar25, Ar26, Ar27, Ar28, Ar29, Ar29, Ar29, Ar21, Ar21, Ar22, Ar23, Ar24,

[0050] The host can be a compound selected from the group consisting of carbazole, dibenzothiophene, dibenzofuran, dibenzoselenophene, azacarbazole, aza-dibenzothiophene, aza-dibenzofuran, and aza-dibenzoselenophene. The "aza" designation in the above fragments, i.e., azadibenzofuran, azadibenzothiophene, etc., means that one or more CH groups in each fragment are replaced with a nitrogen atom. For example, but not by way of limitation, azatriphenylene encompasses both dibenzo[f,h]quinoxaline and dibenzo[f,h]quinoline. Those skilled in the art can easily imagine other nitrogen analogs of the above aza derivatives, and all such analogs are intended to be encompassed by the terms described herein. The host is a metal complex. The host can be a specific compound selected from the group consisting of: [ka] and combinations thereof.

[0051] In yet another aspect of the present disclosure, a first ligand L having formula 1 as defined herein is 1 Also within the scope of the invention disclosed herein are compositions comprising: The composition can include one or more components of the solvent, host, hole injection material, hole transport material, and electron transport layer material disclosed herein. Combination with other materials

[0052] The materials described herein as useful for a particular layer in an organic light-emitting device can be used in combination with a wide variety of other materials present in the device. For example, the emissive dopants disclosed herein can be used in conjunction with a wide variety of hosts, transport layers, blocking layers, injection layers, electrodes, and other layers that may be present. The materials described or referenced below are non-limiting examples of materials that may be useful in combination with the compounds disclosed herein, and those skilled in the art can readily consult the literature to identify other materials that may be useful in combination. HIL / HTL:

[0053] The hole injection / transport material used in the embodiments of the present invention is not particularly limited, and any compound may be used as long as the compound is typically used as a hole injection / transport material. Examples of such materials include phthalocyanine or porphyrin derivatives; aromatic amine derivatives; indolocarbazole derivatives; polymers containing fluorocarbons; polymers with conductive dopants; conductive polymers such as PEDOT / PSS; self-assembly monomers derived from compounds such as phosphonic acid and silane derivatives; MoO x p-type semiconducting organic compounds such as 1,4,5,8,9,12-hexaazatriphenylene hexacarbonitrile; metal complexes, and crosslinkable compounds.

[0054] Examples of aromatic amine derivatives used in HIL or HTL include those having the following general structure: [ka] Including but not limited to:

[0055] Ar 1 From Ar 9are a group consisting of aromatic hydrocarbon cyclic compounds such as benzene, biphenyl, triphenyl, triphenylene, naphthalene, anthracene, phenalene, phenanthrene, fluorene, pyrene, chrysene, perylene, and azulene; dibenzothiophene, dibenzofuran, dibenzoselenophene, furan, thiophene, benzofuran, benzothiophene, benzoselenophene, carbazole, indolocarbazole, pyridylindole, pyrrolodipyridine, pyrazole, imidazole, triazole, oxazole, thiazole, oxadiazole, oxatriazole, dioxazole, thiadiazole, pyridine, pyridazine, pyrimidine, pyrazine, triazine, oxazine, oxathiazine, oxadiazine, indole, benzimidazole, indazole, indole, and aromatic heterocyclic compounds such as oxazine, benzoxazole, benzisoxazole, benzothiazole, quinoline, isoquinoline, cinnoline, quinazoline, quinoxaline, naphthyridine, phthalazine, pteridine, xanthene, acridine, phenazine, phenothiazine, phenoxazine, benzofuropyridine, furodipyridine, benzothienopyridine, thienodipyridine, benzoselenophenopyridine, and selenophenodipyridine; and 2 to 10 cyclic structural units of the same or different types selected from aromatic hydrocarbon cyclic groups and aromatic heterocyclic groups, which are bonded to each other directly or via at least one of an oxygen atom, a nitrogen atom, a sulfur atom, a silicon atom, a phosphorus atom, a boron atom, a chain structural unit, and an aliphatic cyclic group. wherein each Ar is further substituted with a substituent selected from the group consisting of hydrogen, deuterium, halide, alkyl, cycloalkyl, heteroalkyl, arylalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aryl, heteroaryl, acyl, carbonyl, carboxylic acid, ester, nitrile, isonitrile, sulfanyl, sulfinyl, sulfonyl, phosphino, and combinations thereof.

[0056] In one embodiment, Ar 1 From Ar 9 teeth, [ka] are independently selected from the group consisting of: k is an integer from 1 to 20; X 101 From X 108 is C (including CH) or N; Z 101 is NAr 1 , O, or S; Ar 1 has the same radical as defined above.

[0057] Examples of metal complexes used in the HIL or HTL include those represented by the following general formula: [ka] Including but not limited to: Met is a metal that may have an atomic weight greater than 40; (Y 101 -Y 102 ) is a bidentate ligand, and Y 101 and Y 102 are independently selected from C, N, O, P, and S; L 101 is an ancillary ligand; k' is an integer value from 1 to the maximum number of ligands that can be attached to the metal; and k'+k'' is the maximum number of ligands that can be attached to the metal.

[0058] In one embodiment, (Y 101 -Y 102 ) is a 2-phenylpyridine derivative. 101 -Y 102 ) is a carbene ligand. In another embodiment, Met is selected from Ir, Pt, Os, and Zn. In a further embodiment, the metal complex is + For the / Fc couple, it has a minimum oxidation potential of less than about 0.6 V in solution. host:

[0059] The light-emitting layer of the organic EL device of the present invention preferably contains at least a metal complex as a light-emitting material, and may also contain a host material that uses the metal complex as a dopant material. Examples of the host material are not particularly limited, and any metal complex or organic compound may be used as long as the triplet energy of the host is higher than that of the dopant. In the table below, preferred host materials for devices emitting each color are classified, but any host material may be used with any dopant as long as the triplet criterion is met.

[0060] Examples of metal complexes used as host materials preferably have the following general formula: [ka] where Met is a metal; 103 -Y 104 ) is a bidentate ligand, and Y 103 and Y 104 are independently selected from C, N, O, P, and S; L 101 is another ligand; k' is an integer value from 1 to the maximum number of ligands that can be attached to the metal; and k'+k'' is the maximum number of ligands that can be attached to the metal.

[0061] In one embodiment, the metal complex is: [ka] where (ON) is a bidentate ligand with the metal coordinated to atoms O and N.

[0062] In another embodiment, Met is selected from Ir and Pt. 103 -Y 104 ) is a carbene ligand.

[0063] Examples of organic compounds used as the host material include the group consisting of aromatic hydrocarbon cyclic compounds such as benzene, biphenyl, triphenyl, triphenylene, naphthalene, anthracene, phenalene, phenanthrene, fluorene, pyrene, chrysene, perylene, and azulene; dibenzothiophene, dibenzofuran, dibenzoselenophene, furan, thiophene, benzofuran, benzothiophene, benzoselenophene, carbazole, indolocarbazole, pyridylindole, pyrrolodipyridine, pyrazole, imidazole, triazole, oxazole, thiazole, oxadiazole, oxatriazole, dioxazole, thiadiazole, pyridine, pyridazine, pyrimidine, pyrazine, triazine, oxazine, oxathiazine, oxadiazine, indole, benzimidazole, and indole. and aromatic heterocyclic compounds such as benzofuropyridine, indoxazine, benzoxazole, benzisoxazole, benzothiazole, quinoline, isoquinoline, cinnoline, quinazoline, quinoxaline, naphthyridine, phthalazine, pteridine, xanthene, acridine, phenazine, phenothiazine, phenoxazine, benzofuropyridine, furodipyridine, benzothienopyridine, thienodipyridine, benzoselenophenopyridine, and selenophenodipyridine; and aromatic hydrocarbon ring groups and aromatic heterocyclic groups, which may be the same or different groups and which are bonded to each other directly or via at least one of an oxygen atom, a nitrogen atom, a sulfur atom, a silicon atom, a phosphorus atom, a boron atom, a chain structural unit, and an aliphatic cyclic group. Each group is further substituted with substituents selected from the group consisting of hydrogen, deuterium, halide, alkyl, cycloalkyl, heteroalkyl, arylalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aryl, heteroaryl, acyl, carbonyl, carboxylic acid, ester, nitrile, isonitrile, sulfanyl, sulfinyl, sulfonyl, phosphino, and combinations thereof.

[0064] In one embodiment, the host compound contains at least one of the following groups in the molecule: [ka] In the formula, R 101 From R 107 is independently selected from the group consisting of hydrogen, deuterium, halide, alkyl, cycloalkyl, heteroalkyl, arylalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aryl, heteroaryl, acyl, carbonyl, carboxylic acid, ester, nitrile, isonitrile, sulfanyl, sulfinyl, sulfonyl, phosphino, and combinations thereof, and when it is aryl or heteroaryl, has the same definition as Ar mentioned above. k is an integer from 0 to 20 or from 1 to 20; and k''' is an integer from 0 to 20. X 101 From X 108 is selected from C (including CH) or N. Z 101 and Z 102 is NR 101 , O, or S. HBL:

[0065] A hole-blocking layer (HBL) can be used to reduce the number of holes and / or excitons that leave the light-emitting layer. The presence of such a blocking layer in a device can result in significantly higher efficiency compared to a similar device lacking a blocking layer. A blocking layer can also be used to confine light emission to desired regions of an OLED.

[0066] In one embodiment, the compound used in the HBL comprises the same molecule as that used as the host described above.

[0067] In another embodiment, the compound used in the HBL contains at least one of the following groups in the molecule: [ka] where k is an integer from 1 to 20; L 101 is another ligand, and k' is an integer from 1 to 3. ETL:

[0068] The electron transport layer (ETL) may include a material capable of transporting electrons. The electron transport layer may be intrinsic (undoped) or doped. Doping may be used to enhance conductivity. Examples of ETL materials are not particularly limited, and any metal complex or organic compound typically used to transport electrons may be used.

[0069] In one embodiment, the compound used in the ETL contains at least one of the following groups in the molecule: [ka] In the formula, R 101 is selected from the group consisting of hydrogen, deuterium, halide, alkyl, cycloalkyl, heteroalkyl, arylalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aryl, heteroaryl, acyl, carbonyl, carboxylic acid, ester, nitrile, isonitrile, sulfanyl, sulfinyl, sulfonyl, phosphino, and combinations thereof, and when it is aryl or heteroaryl, has the same definition as that of Ar mentioned above. 1 From Ar 3 has the same definition as that of Ar mentioned above. k is an integer from 1 to 20. X 101 From X 108 is selected from C (including CH) or N.

[0070] In another embodiment, the metal complex used in the ETL comprises, but is not limited to, the following general formula: [ka] where (ON) or (NN) is a bidentate ligand with the metal coordinated to atoms O, N or N, N; 101 is another ligand; and k' is an integer value between 1 and the maximum number of ligands that can be attached to the metal.

[0071] In any of the above-mentioned compounds used in each layer of an OLED device, the hydrogen atoms may be partially or fully deuterated. Thus, any specifically recited substituent, such as, but not limited to, methyl, phenyl, pyridyl, etc., includes undeuterated, partially deuterated, and fully deuterated versions thereof. Similarly, classes of substituents, such as, but not limited to, alkyl, aryl, cycloalkyl, heteroaryl, etc., also include undeuterated, partially deuterated, and fully deuterated versions thereof.

[0072] In addition to and / or in combination with the materials disclosed herein, many hole injection materials, hole transport materials, host materials, dopant materials, exciton / hole blocking layer materials, electron transport and electron injection materials can be used in OLEDs. Non-limiting examples of materials that can be used in OLEDs in combination with the materials disclosed herein are listed in Table 2 below. Table 2 lists non-limiting classes of materials, non-limiting examples of compounds for each class, and references that disclose the materials. [Table 2-1] [Table 2-2] [Table 2-3] [Table 2-4] [Table 2-5] [Table 2-6]

Table 2-7

Table 2-8

Table 2-9

Table 2-10

Table 2-11

Table 2-12

Table 2-13

Table 2-14

Table 2-15

Table 2-16

Table 2-17

Table 2-18

Table 2-19

Table 2-20

Table 2-21

Table 2-22

[0073] Device Example:

[0074] Materials used in the device examples: Comparative compounds used: [ka]

[0075] Other materials used in the device: [ka] All device examples were fabricated under high vacuum (<10 -7 The devices were fabricated by thermal evaporation at 1000 Torr. The anode electrode was 1200 Å of indium tin oxide (ITO). The cathode consisted of 10 Å of LiF and 1000 Å of Al. All devices were immediately encapsulated with a glass lid sealed with epoxy resin in a nitrogen glove box (H2O and O2 <1 ppm) after fabrication, and a moisture getter was included in the package. The organic layers of the device example consisted of, from the ITO surface, 100 Å of HAT-CN as a hole injection layer (HIL), 400 Å of NPD as a hole transport layer (HTL), a 400 Å light-emitting layer (EML) containing the compound of Formula 1, compound SD, and a host (BAIQ), a 40 Å blocking layer (BL) of BAIQ, a 450 Å electron transport layer (ETL) of AlQ, and 10 Å of LiF as an electron injection layer (EIL). The comparative compounds were prepared in the same manner as the device examples, except that comparative compounds 1-4 were used as emitters in the EML. [Table 3] Device structures of the compound of the present invention and comparative compounds [Table 4] Device Results 1 1 All values ​​in Table 4 are relative values ​​(arbitrary units - au) except for the CIE coordinates.

[0076] Table 4 summarizes the device data. The luminous efficiency (LE), external quantum efficiency (EQE), and power efficiency (PE) were measured at 1000 nits. Because the emission color of these compounds is primarily due to the phenylquinoline ligand, compound 8 of the present invention exhibits the same CIE as the comparative compounds. However, as can be seen from the full width at half maximum (FWHM) values ​​in Table 4, the emission spectrum of compound 8 is narrower than that of the comparative compounds. A smaller FWHM value indicates a narrower emission spectrum. Device measurements show that when the novel ancillary ligands are used as disclosed herein, all properties are better. For example, compound 8 exhibited a relative driving voltage of 1.00, while the comparative compounds exhibited relative driving voltages ranging from 1.03 to 1.09. Regarding luminous efficiency (LE), compound 8 exhibited better performance than the comparative compounds, with the comparative compounds achieving values ​​ranging from 78 to 89% of the value of compound 8. The same trend was observed for the external electron efficiency (EQE) and power efficiency, with compound 8 showing higher values ​​than the comparative compounds.

[0077] Table 5 below shows an example of the unexpected performance improvement of the compound of the present invention, Compound 12, over comparative compounds 5 and 6 in terms of the photoluminescence quantum yield (PLQY) of the compound: [Table 5] The compound 12 of the present invention exhibited a higher PLQY than the comparative compound, which is desirable as an emitter in high EQE OLEDs. Material Synthesis:

[0078] All reactions were carried out under nitrogen protection unless otherwise stated. All reaction solvents were anhydrous and were used as received from commercial sources.

[0079] Synthesis of compound 8 [ka] Iridium(III) dimer (1.50 g, 1.083 mmol) was added to 3,7-diethylnonane-4,6-dione (1.725 g, 8.13 mmol), and the mixture was solubilized in 2-ethoxyethanol (40 mL). The mixture was degassed by bubbling nitrogen through it for 30 minutes, after which potassium carbonate (1.123 g, 8.13 mmol) was added. The mixture was stirred at room temperature for 48 hours, after which 200 mL of isopropanol was added. The mixture was filtered through a Celite® plug and washed with dichloromethane. The solvent was evaporated, and the crude product was purified by column chromatography on a silica gel column pretreated with triethylamine using 20% ​​dichloromethane (DCM) in heptane. The solid product was washed with methanol (20 mL) and filtered to give 0.220 g (10% yield) of pure dopant (99.5% by HPLC).

[0080] Synthesis of compound 9 [ka] Iridium(III) dimer (1.70 g, 1.18 mmol) and 3,7-diethylnonane-4,6-dione (2.51 g, 11.8 mmol) were dissolved in ethoxyethanol (50 mL), sodium carbonate (0.63 g, 5.90 mmol) was added, and the mixture was degassed by bubbling nitrogen through it. The reaction mixture was stirred at room temperature overnight. The temperature was then raised to 45 °C for 2 h. After cooling to room temperature, the precipitate was filtered through Celite® and washed with MeOH and heptane. The filtrate from Celite® was suspended in DCM (containing 5% EtN), filtered, and evaporated. The resulting red solid (0.6 g) was 99.6% pure by HPLC.

[0081] Synthesis of compound 12 [ka] Iridium(III) dimer (1.75 g, 1.17 mmol) and 3,7-diethylnonane-4,6-dione (2.48 g, 11.7 mmol) were suspended in 2-ethoxyethanol (40 mL) and degassed by bubbling nitrogen through for 30 minutes. Cesium carbonate (2.26 g, 11.7 mmol) was then added to the solution. The mixture was then stirred at 90 °C overnight. Dichloromethane (100 mL) was added to the solution, and the solution was filtered through a pad of Celite®, which was washed with dichloromethane. The solvent was evaporated, and the red solid was applied to Celite® and purified by column chromatography on a silica gel column pretreated with triethylamine using 10% DCM in heptane. The solvent was evaporated to give a red solid, which was then washed with methanol to give the pure desired product (0.430 g, 40% yield) as a red solid.

[0082] Synthesis of compound 32 [ka] Iridium(III) dimer (1.32 g, 0.85 mmol) in 2-ethoxyethanol (40 mL) was degassed with nitrogen for 30 minutes and then mixed with 3,7-diethylnonane-4,6-dione (1.81 g, 8.50 mmol) and potassium carbonate (1.18 g, 8.50 mmol). The reaction mixture was stirred overnight at room temperature. The reaction mixture was then filtered through a plug of Celite® and washed with MeOH. The precipitate was extracted with Celite® containing 5% Et3N / CHCl2 to give 0.2 g of 99.9% pure product (HPLC). The filtrate was concentrated in vacuo and recrystallized by dissolving in DCM and layering on top with methanol. The resulting crystals were 99.6% pure and, together with other products, gave a total of 0.42 g of the title compound (26% yield).

[0083] Synthesis of compound 43 [ka] Iridium(III) dimer (1.75 g, 1.09 mmol) and 3,7-diethylnonane-4,6-dione (2.31 g, 10.9 mmol) were diluted with 2-ethoxyethanol (40 mL) and degassed by bubbling nitrogen through for 30 minutes. Potassium carbonate (1.50 g, 10.9 mmol) was added to the mixture. The mixture was stirred at room temperature overnight. Dichloromethane (100 mL) was added; the reaction mixture was filtered through a pad of Celite®, which was washed with dichloromethane. The solvent was evaporated, and the red solid was applied to Celite® and purified by column chromatography on silica gel pretreated with triethylamine using 10% DCM in heptane as the eluent. The resulting red solid was washed with methanol and repurified by column chromatography using 5% DCM in heptane to give the pure desired product (340 mg, 31% yield).

[0084] Synthesis of compound 54

[0085] Synthesis of 5-cyclopentyl-2-(3,5-dimethylphenyl)quinoline [ka] 5-Chloro-2-(3,5-dimethylphenyl)quinoline (4.29 g, 16.0 mmol), 2'-(dicyclohexylphosphino)-N2,N2,N6,N6-tetramethyl-[1,1'-biphenyl]-2,6-diamine (CPhos) (0.28 g, 0.64 mmol), and diacetoxypalladium (0.072 g, 0.320 mmol) were dissolved in anhydrous THF (60 mL). A solution of cyclopentylbromozinc(II) (44.9 mL, 22.4 mmol) in THF (0.5 M) was added dropwise via syringe and stirred at room temperature for 3 h. The mixture was diluted with EA, washed with brine, dried over sodium sulfate, and concentrated under reduced pressure. The crude product was purified by silica gel column chromatography eluting with heptane / EA 4 / 1 (v / v). The yellow powder was then recrystallized from heptane to give the title compound as colorless crystals (3.5 g, 72% yield).

[0086] Synthesis of iridium(III) dimers [ka] 5-Chloropentyl-2-(3,5-dimethylphenyl)quinoline (3.56 g, 11.8 mmol) and iridium(III) chloride trihydrate (1.30 g, 3.69 mmol) were dissolved in a mixture of ethoxyethanol (90 mL) and water (30 mL). The reaction mixture was degassed and heated at 105 °C for 24 hours. The reaction mixture was then cooled to room temperature and filtered through filter paper. The filtrate was washed with methanol and dried under vacuum to give the iridium complex dimer as a black solid (1.60 g, 54% yield).

[0087] Synthesis of compound 54 [ka] The iridium complex dimer (1.60 g, 1.00 mmol), 3,7-diethylnonane-4,6-dione (2.12 g, 9.98 mmol), and sodium carbonate (0.53 g, 4.99 mmol) were suspended in 50 mL of ethoxyethanol and stirred overnight at room temperature under N2. The reaction product was then filtered through a pad of Celite® and washed with methanol. Most of the red material was solubilized and passed through Celite®. The Celite® was suspended in DCM, and the contents of the suspension were combined with 10% triethylamine and the filtrate and evaporated. The residue was pretreated with Et3N and purified by silica gel column chromatography eluted with hexane / ethyl acetate 9 / 1 (v / v) to give a dark red solid. After further purification on a reverse-phase C18 column eluted with acetonitrile and evaporation, the desired complex was obtained as a dark red solid (0.75 mg, 37% yield).

[0088] Synthesis of compound 55 [ka] Iridium(III) dimer (2.40 g, 1.45 mmol), potassium carbonate (2.00 g, 14.5 mmol), and 3,7-diethylnonane-4,6-dione (3.08 g, 14.5 mmol) were suspended in 40 mL of ethoxyethanol, degassed, and stirred overnight at 45 °C. The reaction mixture was cooled to room temperature, filtered through a pad of Celite®, and the pad was washed with cold methanol. The precipitate combined with the Celite® pad was suspended in 50 mL of DCM with 5% EtN and filtered through a silica plug. Evaporation of the mixture afforded a red solid. Crystallization from a DCM / acetonitrile / methanol mixture afforded 1.4 g of the desired complex (48% yield).

[0089] Synthesis of compound 62 [ka] Chloro-bridged dimer (6.08 g, 3.54 mmol), 3,7-diethylnonane-4,6-dione (4.26 g, 20.06 mmol), sodium carbonate (3.75 g, 35.4 mmol), and 120 mL of 2-ethoxyethanol were added to a 500 mL round-bottom flask. The reaction mixture was stirred overnight under nitrogen. The reaction mixture was poured onto a plug containing Celite®, basic alumina, and silica gel. The plug was pretreated with 10% triethylamine / heptane, and the pretreated plug was washed with heptane and dichloromethane. The plug was eluted with dichloromethane. The filtrate was evaporated in the presence of isopropanol, and the solid was filtered from the isopropanol. The solid was dissolved in tetrahydrofuran, to which isopropanol was added. The tetrahydrofuran was removed under reduced pressure, and the solution was concentrated. The red solid was filtered, washed with isopropanol and dried (4.39 g, 60% yield).

[0090] Synthesis of compound 83 [ka]

[0091] Iridium(III) dimer (2.50 g, 2.49 mmol), 3,7-diethylnonane-4,6-dione (3.70 g, 17.43 mmol), and potassium carbonate (2.41 g, 17.4 mmol) were suspended in 50 mL of ethoxyethanol. The reaction mixture was degassed and stirred at ambient temperature for 24 h. The reaction mixture was washed through a pad of Celite®, and the pad was rinsed with MeOH. The solid remaining on the Celite® was suspended in DMC containing 10% EtN, filtered through a silica plug, and evaporated. The solid residue was crystallized from a DCM / THF / MeOH mixture to give the desired complex as a red solid (3.1 g, 65% yield).

[0092] Synthesis of Compound 93

[0093] Synthesis of 4-fluoro-3,5-dimethylbenzoyl chloride [ka] Oxalyl chloride (6.93 mL, 79 mmol) was added dropwise to a solution of 4-fluoro-3,5-dimethylbenzoic acid (12.1 g, 72.0 mmol) in dichloromethane (360 mL) and DMF (0.06 mL, 0.720 mmol) at room temperature under nitrogen. The mixture was stirred at room temperature and monitored by TLC. Total solubilization of the mixture occurred within 3 hours. After an additional hour, the entire reaction was complete. The solvent was removed under reduced pressure, and the crude mixture was dried under high vacuum and used without further purification.

[0094] Synthesis of 4-fluoro-N-(4-isopropylphenethyl)-3,5-dimethylbenzamide [ka] Pyridine (12.12 mL, 150 mmol) and 2-(4-isopropylphenyl)ethanamine hydrochloride (10 g, 50.1 mmol) were added to a three-neck flask and dissolved in DCM (50 mL). The solution was cooled in an ice bath, and 4-fluoro-3,5-dimethylbenzoyl chloride (10.28 g, 55.1 mmol) was added slowly (portionwise), and the mixture was stirred at room temperature for 12 hours. DCM was added to the solution, and the organic layer was washed with 5% HCl solution, followed by 5% NaOH solution, and dried over sodium sulfate. The solvent was evaporated, and the crude compound was used without further purification.

[0095] Synthesis of 1-(4-fluoro-3,5-dimethylphenyl)-7-isopropyl-3,4-dihydroisoquinoline [ka] 4-Fluoro-N-(4-isopropylphenethyl)-3,5-dimethylbenzamide (15 g, 47.9 mmol), phosphorus pentoxide (42.8 g, 302 mmol), and phosphoryl oxochloride (44.6 mL, 479 mmol) were diluted in xylene (100 mL) and then refluxed under nitrogen for 3 hours. The reaction was complete by GCMS after 2.5 hours. The reaction mixture was cooled to room temperature and stirred overnight. The solvent was decanted, and ice was slowly added to the product. The residual mixture in water was made slightly alkaline by the addition of 50% NaOH, and the product was extracted with toluene. The organic layer was washed with water, dried over sodium sulfate, and the solvent was evaporated under reduced pressure. The crude product was used without further purification.

[0096] Synthesis of 1-(4-fluoro-3,5-dimethylphenyl)-7-isopropylisoquinoline [ka] A solution of 1-(4-fluoro-3,5-dimethylphenyl)-7-isopropyl-3,4-dihydroisoquinoline (14.4 g, 47.9 mmol) in xylene (240 mL) was degassed by bubbling nitrogen through for 15 minutes. During this time, 5% palladium on carbon (2.55 g, 2.39 mmol) was added. The mixture was heated to reflux overnight. The reaction was monitored by TLC. The mixture was filtered through a pad of Celite®, and the solvent was evaporated under reduced pressure. The product was applied to Celite and purified by column chromatography using 10% EA in heptane to remove the initial impurity. The volume of EA gradually increased to 15%, releasing the desired product. The desired product, which appeared after 10 minutes by HPLC, contained 2% impurity. C18 reverse-phase chromatography eluting with 95 / 5 MeCN / water (v / v) afforded 4.5 g of pure product (32% yield over four steps).

[0097] Synthesis of iridium(III) dimers [ka] Iridium(III) chloride trihydrate (1.64 g, 4.65 mmol) and 1-(4-fluoro-3,5-dimethylphenyl)-7-isopropylisoquinoline (4.09 g, 13.95 mmol) were suspended in ethoxyethanol (50 mL) and water (12 mL), degassed with nitrogen, and immersed in an oil bath at 105 °C overnight. After cooling to room temperature, the solid was filtered and washed with methanol. The washed material was dried in vacuo to give 1.8 g (74% yield) of a red solid.

[0098] Synthesis of Compound 93 [ka] Iridium(III) dimer (1.00 g, 0.96 mmol) was combined with 3,7-diethylnonane-4,6-dione (1.53 g, 7.21 mmol) and diluted with 2-ethoxyethanol (36 mL). The solution was degassed by bubbling nitrogen through it for 15 minutes. Potassium carbonate (0.997 g, 7.21 mmol) was then added to the solution, and the mixture was stirred at room temperature for 18 hours. The bright red precipitate was filtered through a pad of Celite® and washed with MeOH. The filtrate was discarded, and the solid on top of the Celite® pad was washed with DCM. The crude product was applied to Celite and purified by column chromatography using 5% DCM in heptane on a silica gel column pretreated with triethylamine. The target compound was obtained as a red solid (0.9 g).

[0099] Synthesis of Compound 118

[0100] Synthesis of 5-isobutylquinoline [ka] A mixture of 5-bromoquinoline (20 g, 93 mmol), isobutylboronic acid (19.4 g, 186 mmol), and potassium phosphate, HO (64.4 g, 280 mmol) in toluene (600 mL) was purged with N for 20 min, after which Pd2dba3 (1.71 g, 1.87 mmol) and dicyclohexyl(2',6'-dimethoxy-[1,1'-biphenyl]-2-yl)phosphine (3.06 g, 7.46 mmol) (SPhOS) were added. The mixture was heated to reflux overnight. The reaction was allowed to proceed to completion. The crude product was purified by silica gel column chromatography using a gradient mixture of heptane / EA: 85 / 15 to 7 / 3 (v / v) as the eluent to give an oil (11.5 g, 67% yield).

[0101] Synthesis of 5-isobutylquinoline 1-oxide [ka] 3-Chloroperbenzoic acid (m-CPBA) (16.6 g, 74.2 mmol) was added in portions to a solution of 5-isobutylquinoline (12.5 g, 67.5 mmol) in DCM (150 mL) cooled to 0 °C under nitrogen. The mixture was stirred overnight at room temperature and then at 50 °C for 11 h. Further m-CPBA was added to the mixture to drive the reaction to completion. Upon completion, the reaction mixture was quenched with aqueous NaHCO3. The aqueous mixture was extracted with DCM, washed with water and brine, and dried over Na2SO4. The crude product was purified by silica gel column chromatography using a gradient mixture of DCM / MeOH: 97 / 3 to 95 / 5 (v / v) as the eluent to give an off-white solid (11.0 g, 80.0% yield).

[0102] Synthesis of 5-isobutylquinolin-2(1H)-one [ka] Trifluoroacetic anhydride (61.8 mL, 437 mmol) was added to a stirred solution of 5-isobutylquinoline 1-oxide (11 g, 54.7 mmol) in DMF (70 mL) under N at 0 °C. The mixture was stirred at room temperature overnight. Upon completion of the reaction, trifluoroacetic anhydride was removed under reduced pressure. The residue was quenched with aqueous NaHCO and further diluted with water. The crude product was recrystallized from aqueous DMF to give a white solid (8.2 g, 75% yield).

[0103] Synthesis of 2-chloro-5-isobutylquinoline [ka] Phosphorus oxychloride (7.60 mL, 81 mmol) was added dropwise to a solution of 5-isobutylquinolin-2(1H)-one (8.2 g, 40.7 mmol) in DMF (160 mL) under N for 30 minutes. The reaction mixture was then heated at 80 °C. After the reaction was completed, the remaining POCl was evaporated under reduced pressure and aqueous NaCO was carefully added. The solid was isolated to give an off-white solid (8.1 g, 91% yield).

[0104] Synthesis of 2-(3,5-dichlorophenyl)-5-isobutylquinoline [ka] Nitrogen gas was bubbled through a mixture of (3,5-dichlorophenyl)boronic acid (10.6 g, 55.5 mmol), 2-chloro-5-isobutylquinoline (8.13 g, 37 mmol), and Na2CO3 (7.84 g, 74.0 mmol) in THF (250 mL) and water (50 mL) for 30 min. Tetrakis(triphenylphosphine)palladium(0) (1.71 g, 1.48 mmol) was added, and the mixture was heated to reflux overnight. After completion of the reaction (monitored by GCMS), the reaction mixture was diluted with ethyl acetate, mixed, and washed with brine and water. The organic layer was dried over sodium sulfate, and the solvent was evaporated under reduced pressure to give the crude product, which was purified by silica gel column chromatography using a gradient mixture of heptane / EA: 98 / 2 to 96 / (v / v) as the eluent to give a solid (8.0 g, 66% yield).

[0105] Synthesis of 2-(3,5-dimethyl(D6)phenyl)-5-isobutylquinoline [ka] CD3MgI (61 mL, 61 mmol) in diethyl ether (1.0 M) was added to a mixture of 2-(3,5-dichlorophenyl)-5-isobutylquinoline (8.0 g, 24.2 mmol) and dichloro(1,3-bis(diphenylphosphino)propane)nickel (Ni(dppp)Cl2) (0.39 g, 0.73 mmol) in diethyl ether (120 mL) for 30 min. The mixture was stirred at room temperature overnight. After the reaction was completed, the reaction mixture was cooled in an ice bath and carefully quenched with water. The mixture was extracted with EA and washed with water (three times) and brine. The crude product was purified by silica gel column chromatography using a gradient mixture of heptane / DCM / EA 89 / 10 / 1 to 84 / 15 / 1 (v / v / v) as the eluent to give an oil (6.5 g, 91% yield).

[0106] Synthesis of iridium(III) dimers [ka] A mixture of 2-(3,5-dimethyl(D6)phenyl)-5-isobutylquinoline (5.17 g, 17.5 mmol) and iridium(III) chloride (1.80 g, 4.86 mmol) in ethoxyethanol (30 mL) and water (10 mL) was degassed by bubbling N2 for 30 minutes and then heated at 100 °C for 19 hours. The reaction mixture was cooled and a small amount of MeOH was added. The iridium(III) dimer was isolated by filtration to give a solid (2.40 g, 61% yield), which was used in the subsequent reaction without further purification.

[0107] Synthesis of Compound 118 [ka] A mixture of iridium(III) dimer (1.30 g, 0.80 mmol), 3,7-diethylnonane-4,6-dione (1.69 g, 7.96 mmol), and Na2CO3 (1.69 g, 15.9 mmol) in ethoxyethanol (25 mL) was degassed for 20 minutes and stirred at room temperature for 24 hours. The reaction mixture was filtered and washed with a small amount of methanol and heptane. The solid was dissolved in 10% triethylamine (TEA) in DCM. The mixture was filtered and evaporated under reduced pressure. The red solid was recrystallized from DCM / IPA with 5% TEA to give a red solid (7.0 g, 44% yield).

[0108] Synthesis of compound 141 [ka] Iridium(III) dimer (0.80 g, 0.58 mmol) and 6-ethyl-2-methyloctane-3,5-dione (0.75 g, 4.06 mmol) were added to a round-bottom flask. The mixture was diluted with 2-ethoxyethanol (40 mL), degassed with nitrogen for 30 minutes, and K2CO3 (0.60 g, 4.33 mmol) was added to the mixture. The mixture was stirred at room temperature overnight. The precipitate was filtered through a pad of Celite®. The solvent was evaporated, and the crude product was purified by silica gel column chromatography using a mixture of heptane / DCM 95 / 5 (v / v). The pure product (0.65 g, 67% yield) was obtained.

[0109] Synthesis of compound 142 [ka] Iridium(III) dimer (0.80 g, 0.56 mmol) and 6-ethyl-2-methyloctane-3,5-dione (0.77 g, 4.16 mmol) were dissolved in ethoxyethanol (19 mL). The mixture was degassed by bubbling nitrogen through it for 15 minutes, and then K2CO3 (0.576 g, 4.16 mmol) was added. The mixture was stirred at room temperature overnight. Dichloromethane was added to the mixture, and the solution was filtered through a pad of Celite®, washing with dichloromethane until the filtrate was clear. The crude product was purified by column chromatography using a triethylamine-treated silica gel column eluted with a 95 / 5 mixture of heptane and dichloromethane (v / v). The pure product was recovered as a red powder (0.35 g, 67% yield).

[0110] Synthesis of compound 176 [ka] Iridium(III) dimer (0.75 g, 0.47 mmol) and 6-ethyl-2-methyloctane-3,5-dione (0.64 g, 3.50 mmol) were diluted with ethoxyethanol (16 mL) and degassed with nitrogen for 30 minutes. KCO (0.48 g, 3.50 mmol) was added to the mixture, which was then stirred at room temperature overnight. DCM was added to the mixture to solubilize the product. The reaction mixture was filtered through a pad of Celite® and evaporated. The crude product was purified by silica gel column chromatography eluting with a mixture of heptane / DCM 95 / 5 (v / v) to give the pure product (0.59 g, 66% yield).

[0111] Synthesis of compound 278 [ka] Chloro-bridged dimer (4.37 g, 2.91 mmol), 3,7-diethyl-5-methylnonane-4,6-dione (3.7 g, 16.4 mmol), sodium carbonate (3.08 g, 29.1 mmol), and 100 mL of 2-ethoxyethanol were added to a round flask. The reaction mixture was stirred at room temperature for 48 hours under nitrogen. The reaction mixture was poured onto a plug containing Celite®, basic alumina, and silica gel. The plug was pretreated with 10% triethylamine in heptane and then washed with heptane and dichloromethane. The plug was eluted with dichloromethane. The filtrate was evaporated in the presence of isopropanol, and the solid was filtered from the isopropanol. The solid was dissolved in tetrahydrofuran, and isopropanol was added to the mixture. The tetrahydrofuran was removed on a rotovap, and the solution was concentrated. The red solid was filtered and washed with isopropanol (0.79 g, 16% yield).

[0112] Synthesis of Compound 320 [ka] Iridium(III) dimer (2.00 g, 1.25 mmol), 3,7-diethyl-1-5-methylnonane-4,6-dione (1.98 g, 8.73 mmol), and potassium carbonate (1.21 g, 8.73 mmol) were suspended in 50 mL of ethoxyethanol. The reaction mixture was degassed and stirred overnight at room temperature. The mixture was cooled in an ice bath and filtered through a pad of Celite®, which was washed with cold methanol. The precipitate attached to the Celite® was suspended in DCM containing 5% EtN and filtered through a pad of silica. Evaporation of the solution afforded a red solid. The solid was purified by recrystallization from DCM / MeOH to give the desired complex as a red solid (1.5 g, 59% yield).

[0113] Synthesis of comparative compound 4 [ka] Iridium(III) dimer (0.70 g, 0.51 mmol) and 3-ethyldecane-4,6-dione (0.75 g, 3.79 mmol) were suspended in ethoxyethanol (17 mL). The reaction mixture was degassed by bubbling nitrogen through it for 15 minutes, and K2CO3 (0.52 g, 3.79 mmol) was added. The mixture was stirred at room temperature overnight. Thin-layer chromatography (TLC) performed in the morning showed complete consumption of the dimer. Dichloromethane was added to the mixture, and the solution was filtered through a pad of Celite®, washing with dichloromethane until the filtrate was clear. The crude product was purified by column chromatography using a triethylamine-treated column eluted with a mixture of heptane / dichloromethane (95 / 5, v / v). The pure product was recovered as a red powder (0.600 g, 70% yield).

[0114] It is understood that the various embodiments described herein are by way of example only and are not intended to limit the scope of the invention. For example, many of the materials described herein can be substituted with other materials and structures without departing from the spirit of the invention. Thus, the present invention as claimed may include variations from the specific examples and preferred embodiments described herein, as will be apparent to those skilled in the art. It is understood that various theories as to why the invention works are not intended to be limiting. [Prior art documents] [Patent documents]

[0115] [Patent Document 1] U.S. Patent No. 5,844,363 [Patent Document 2] U.S. Patent No. 6,303,238 [Patent Document 3] U.S. Patent No. 5,707,745 [Patent Document 4] U.S. Patent No. 7,279,704 [Explanation of symbols]

[0116] 100 Organic Light-Emitting Devices 110 Substrate 115 Anode 120 Hole injection layer 125 Hole transport layer 130 Electron Blocking Layer 135 Light-emitting layer 140 Hole Blocking Layer 145 Electron transport layer 150 Electron injection layer 155 Protective layer 160 cathode 162 First conductive layer 164 Second Conductive Layer 200 Inverted OLED, device 210 Substrate 215 cathode 220 Light-emitting layer 225 Hole transport layer 230 Anode

Claims

1. an anode; a cathode; an organic layer disposed between the anode and the cathode, The organic layer comprises a first ligand L having the following formula I: 1 and a host, The first ligand L 1 is coordinated to Ir, The compound is a heteroleptic compound, and the organic light-emitting device (OLED) is characterized in that the compound is a heteroleptic compound. 【Chemical 1】 (In formula I, R 1 , R 2 , R 3 , and R 4 is independently selected from the group consisting of alkyl, cycloalkyl, aryl, and heteroaryl; R 1 , R 2 , R 3 , and R 4 each have at least two Cs, R 1 , R 2 , R 3 , R 4 and R 5 do not bond to or condense with other substituents to form a ring; R 5 is selected from the group consisting of hydrogen, deuterium, halide, alkyl, cycloalkyl, heteroalkyl, arylalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aryl, heteroaryl, acyl, carbonyl, carboxylic acid, ester, nitrile, isonitrile, sulfanyl, sulfinyl, sulfonyl, phosphino, and combinations thereof.

2. R 1 , R 2 , R 3 , and R 4 10. The organic light emitting device (OLED) of claim 1, wherein each of C has two Cs.

3. R 1 , R 2 , R 3 , and R 4 10. The organic light emitting device (OLED) of claim 1, wherein each is independently selected from the group consisting of alkyl and cycloalkyl.

4. R 1 , R 2 , R 3 , and R 4 The organic light emitting device (OLED) of claim 1 , wherein is alkyl.

5. R 1 , R 2 , R 3 , and R 4 and each independently represents a substituted or unsubstituted ethyl.

6. The compound is a compound having a second ligand L 2 Including, The second ligand L 2 10. The organic light-emitting device (OLED) of claim 1, wherein:

7. The compound is Ir(L 1 ) x (L 2 ) y (L 3 ) z 10. The organic light emitting device (OLED) of claim 1 having the formula: (In the formula, L 2 is a second ligand, and L 3 is a third ligand, and L 2 and L 3 may be the same or different, x is 1, 2, or 3; y is 0, 1, or 2; z is 0, 1, or 2; x+y+z is 3, The second ligand L 2 and the third ligand L 3 are independently selected from the group consisting of: 【Chemistry 2】 【Chemistry 3】 R a , R b , R c , and R d represents mono-, di-, tri-, or tetra-substituted or is unsubstituted; R a , R b , R c , and R d are independently selected from the group consisting of hydrogen, deuterium, halide, alkyl, cycloalkyl, heteroalkyl, arylalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aryl, heteroaryl, acyl, carbonyl, carboxylic acid, ester, nitrile, isonitrile, sulfanyl, sulfinyl, sulfonyl, phosphino, and combinations thereof; R a , R b , R c , and R d Two adjacent substituents among may be linked to form a fused ring or a multidentate ligand.

8. The compound is Ir(L 1 ) (L 2 ) 2 8. The organic light emitting device (OLED) of claim 7 having the formula:

9. The first ligand L 1 9. The organic light emitting device (OLED) of claim 8, wherein is selected from the group consisting of: 【Chemistry 4】

10. The second ligand L 2 10. The organic light emitting device (OLED) of claim 9, wherein is selected from the group consisting of: 【Chemistry 5】 【Chemistry 6】 【Chemistry 7】 【Chemistry 8】 【Chemistry 9】 【Chemistry 10】 【Chemistry 11】 【Chemistry 12】

11. 11. The organic light emitting device (OLED) of claim 10, wherein the compound is selected from the group consisting of: 【Chemistry 14】 【Chemistry 15】 【change】 【Chemistry 16】 【Chemistry 17】 【Chemistry 18】 【Chemistry 19】 【Chemistry 20】 【Chemical 21】 【Chemical 22】 【Chemical 23】 【Chemistry 24】 【Chemistry 25】

12. 2. The organic light emitting device (OLED) of claim 1, wherein the compound is selected from the group consisting of: 【Chemical 26】

13. 10. The organic light emitting device (OLED) of claim 1, wherein the compound is partially or fully deuterated.

14. 14. The organic light emitting device (OLED) of claim 1, wherein the host is selected from the group consisting of carbazole, dibenzothiophene, dibenzofuran, dibenzoselenophene, azacarbazole, aza-dibenzothiophene, aza-dibenzofuran, and aza-dibenzoselenophene.

15. The host may be selected from the group consisting of benzene, biphenyl, triphenyl, triphenylene, naphthalene, anthracene, phenalene, phenanthrene, fluorene, pyrene, chrysene, perylene, azulene, dibenzothiophene, dibenzofuran, dibenzoselenophene, furan, thiophene, benzofuran, benzothiophene, benzoselenophene, carbazole, indolocarbazole, pyridylindole, pyrrolodipyridine, pyrazole, imidazole, triazole, oxazole, thiazole, oxadiazole, oxatriazole, dioxazole, thiadiazole, pyridine, pyridazine, pyrimidine, pyrazine, and triazole.

14. The organic light-emitting device (OLED) of claim 1, wherein the aryl group is selected from the group consisting of benzofuropyridine, oxazine, oxathiazine, oxadiazine, indole, benzimidazole, indazole, indoxazine, benzoxazole, benzisoxazole, benzothiazole, quinoline, isoquinoline, cinnoline, quinazoline, quinoxaline, naphthyridine, phthalazine, pteridine, xanthene, acridine, phenazine, phenothiazine, phenoxazine, benzofuropyridine, furodipyridine, benzothienopyridine, thienodipyridine, benzoselenophenopyridine, and selenophenodipyridine.

16. 14. The organic light-emitting device (OLED) according to claim 1, wherein the host contains at least one selected from the following group in the molecule: 【Chemical 27】 (In the formula, R 101 From R 107 are independently selected from the group consisting of hydrogen, deuterium, halide, alkyl, cycloalkyl, heteroalkyl, arylalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aryl, heteroaryl, acyl, carbonyl, carboxylic acid, ester, nitrile, isonitrile, sulfanyl, sulfinyl, sulfonyl, phosphino, and combinations thereof; k is an integer from 0 to 20 or from 1 to 20; k''' is an integer from 0 to 20; and X 101 From X 108 is selected from C (including CH) or N, Z 101 and Z 102 is NR 101 , O, or S.

17. 17. The organic light-emitting device (OLED) of claim 16, wherein the host contains at least one selected from the following group in the molecule: 【Chemical Formula 28】 (In the formula, R 101 is selected from the group consisting of hydrogen, deuterium, halide, alkyl, cycloalkyl, heteroalkyl, arylalkyl, alkoxy, aryloxy, amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aryl, heteroaryl, acyl, carbonyl, carboxylic acid, ester, nitrile, isonitrile, sulfanyl, sulfinyl, sulfonyl, phosphino, and combinations thereof; k is an integer from 0 to 20 or from 1 to 20; and X 101 From X 108 is selected from C (including CH) or N, Z 101 and Z 102 is NR 101 , O, or S.

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