OLED WITH MULTI-EMISSIVE MATERIAL LAYER
20170301871 · 2017-10-19
Inventors
Cpc classification
H10K85/625
ELECTRICITY
C09K2211/1029
CHEMISTRY; METALLURGY
C09K2211/1014
CHEMISTRY; METALLURGY
H10K85/341
ELECTRICITY
H10K85/626
ELECTRICITY
C09K2211/185
CHEMISTRY; METALLURGY
H10K85/6572
ELECTRICITY
C09K11/025
CHEMISTRY; METALLURGY
H10K85/615
ELECTRICITY
H10K30/865
ELECTRICITY
International classification
Abstract
The present invention relates to organic light emitting devices with a multi-emissive material layer (EML), where a multi-EML generally refers to an emissive layer having at least two layers of emissive material, each layer having a different emitter concentration (e.g. a first EML in direct contact with a second EML, and the emitter concentration of the first EML (hole favorable) exceeds that of the second EML (electron favorable)).
Claims
1. An organic light emitting device comprising: an anode; a cathode; an emissive layer between the anode and the cathode, the emissive layer comprising a first emissive layer in direct contact with a second emissive layer, the first emissive layer comprising a first emitter and the second emissive layer comprising a second emitter, and the concentration of the first emitter in the first emissive layer exceeds the concentration of the second emitter in the second emissive layer.
2. The organic light emitting device of claim 1, wherein the emissive layer comprises a third emissive layer comprising a third emitter, wherein the third emissive layer is in direct contact with the second emissive layer, and the concentration of the second emitter in the second emissive layer exceeds the concentration of the third emitter in the third emissive layer.
3. The organic light emitting device of claim 2, wherein the emissive layer comprises a fourth emissive layer comprising a fourth emitter, wherein the fourth emissive layer is in direct contact with the third emissive layer, and the concentration of the third emitter in the third emissive layer exceeds the concentration of the fourth emitter in the fourth emissive layer.
4. The organic light emitting device of claim 1, wherein the first emitter and the second emitter are the same.
5. The organic light emitting device of claim 1, wherein the first and second emissive layers comprise a host material.
6. The organic light emitting device of claim 1, wherein at least one of the first and second emitters emits red or blue light.
7. The organic light emitting device of claim 1, wherein each of the first emitter and the second emitter comprises an organometallic complex represented by Formula I: ##STR00045## wherein: M is Pt, Pd, or Ir; R.sup.1, R.sup.2, R.sup.3, R.sup.4, R.sup.8, R.sup.9, and R.sup.10 each independently represents hydrogen, halogen, hydroxy, amino, nitro, thiol, substituted or unsubstituted C.sub.1-C.sub.4 alkyl, substituted or unsubstituted alkoxy, or substituted or unsubstituted aryl; Y.sup.1a represents O, S, S═O, O═S═O, Se, Se═O, O═Se═O, N, NR.sup.5a, P, PR.sup.5a, As, AsR.sup.5a, O═NR.sup.5a, O═PR.sup.5a, O═AsR.sup.5a, B, BR.sup.5a, SiR.sup.5a, SiR.sup.5aR.sup.5b, CR.sup.5a, or CR.sup.5aR.sup.5b; Y.sup.1b and Y.sup.1c each independently represents O, S, S═O, O═S═O, Se, Se═O, O═Se═O, N, NR.sup.5a, P, PR.sup.5a, As, AsR.sup.5a, O═NR.sup.5a, O═PR.sup.5a, O═AsR.sup.5a, B, BR.sup.5a, SiR.sup.5a, SiR.sup.5aR.sup.5b, CR.sup.5a, CR.sup.5aR.sup.5b, or a single bond, wherein if Y.sup.1b represents a single bond, Y.sup.2e and Y.sup.4c are directly linked by a single bond, and if Y.sup.1c represents a single bond, Y.sup.2b and Y.sup.3c are directly linked by a single bond; Y.sup.2a, Y.sup.2b, Y.sup.2c, Y.sup.2d, Y.sup.2e, and Y.sup.2f each independently represents C or N; R.sup.5a, R.sup.5b, and R.sup.5c each independently represents substituted or unsubstituted C.sub.1-C.sub.4 alkyl or substituted or unsubstituted aryl; R.sup.6a, R.sup.6b, and R.sup.6c each independently represents substituted or unsubstituted C.sub.1-C.sub.4 alkyl or substituted or unsubstituted aryl; R.sup.7a, R.sup.7b, and R.sup.7c each independently represents substituted or unsubstituted C.sub.1-C.sub.4 alkyl or substituted or unsubstituted aryl; Y.sup.3a, Y.sup.3b, Y.sup.3c, Y.sup.3d, and Y.sup.3e each independently represents C, N, Si, O, or S; Y.sup.4a, Y.sup.4b, Y.sup.4c, Y.sup.4d, and Y.sup.4e each independently represents C, N, Si, O, or S; each of L.sup.1, L.sup.2, L.sup.3, L.sup.4, L.sup.5, and L.sup.6 is independently absent or represents a linking group; ##STR00046## represents one of the following: ##STR00047## wherein Z.sup.1, Z.sup.2 independently represents O, S, S═O, O═S═O, Se, Se═O, O═Se═O, NR.sup.5a, PR.sup.5a, AsR.sup.5a, O═NR.sup.5a, O═PR.sup.5a, O═AsR.sup.5a, BR.sup.5a, SiR.sup.5aR.sup.5b, or CR.sup.5aR.sup.5b; ##STR00048## represents one of the following: ##STR00049## wherein Z.sup.3 and Z.sup.4 each independently represents O, S, S═O, O═S═O, Se, Se═O, O═Se═O, NR.sup.6a, PR.sup.6a, AsR.sup.6a, O═NR.sup.6a, O═PR.sup.6a, O═AsR.sup.6a, BR.sup.6a, SiR.sup.6aR.sup.6b, or CR.sup.6aR.sup.6b; ##STR00050## represents one of the following: ##STR00051## wherein Z.sup.5 and Z.sup.6 each independently represents O, S, S═O, O═S═O, Se, Se═O, O═Se═O, NR.sup.7a, PR.sup.7a, AsR.sup.7a, O═NR.sup.7a, O═PR.sup.7a, O═AsR.sup.7a, BR.sup.7a, SiR.sup.7aR.sup.7b, or CR.sup.7aR.sup.7b; Ar.sup.3 and Ar.sup.4 each independently represents a substituted or unsubstituted 5-membered ring or a 6-membered aromatic ring; and n is 0, 1, 2, 3, 4, 5, or 6.
8. The organic light emitting device of claim 1, wherein each of the first emitter and the second emitter comprises an organometallic complex, wherein the metal in each of the organometallic complex is Pt(II), Pd(II), or Ir(III).
9. The organic light emitting device of claim 7, wherein M is Pt(II) or Pd(II).
10. The organic light emitting device of claim 7, wherein the organometallic complex is represented by Formula II: ##STR00052## wherein: M is Pt, Pd, or Ir; R.sup.1, R.sup.2, R.sup.3, and R.sup.4 each independently represents hydrogen, halogen, hydroxy, amino, nitro, thiol, substituted or unsubstituted C.sub.1-C.sub.4 alkyl, substituted or unsubstituted alkoxy, or substituted or unsubstituted aryl; Y.sup.1a represents O, S, S═O, O═S═O, Se, Se═O, O═Se═O, NR.sup.5a, PR.sup.5a, AsR.sup.5a, O═NR.sup.5a, O═PR.sup.5a, O═AsR.sup.5a, BR.sup.5a, SiR.sup.5aR.sup.5b, or CR.sup.5aR.sup.5b; Y.sup.2a, Y.sup.2c, Y.sup.2d, and Y.sup.2f each independently represents C or N; R.sup.5a, R.sup.5b, and R.sup.5c each independently represents substituted or unsubstituted C.sub.1-C.sub.4 alkyl or substituted or unsubstituted aryl; Y.sup.3a, Y.sup.3b, Y.sup.3d, and Y.sup.3e each independently represents C, N, or Si; Y.sup.4a, Y.sup.4b, Y.sup.4d, and Y.sup.4e each independently represents C, N, or Si; n is 0, 1, 2, 3, or 4.
11. The organic light emitting device of claim 7, wherein the organometallic complex is represented by Formula III: ##STR00053## wherein: M is Pt, Pd, or Ir; R.sup.1, R.sup.2, R.sup.3, and R.sup.4 each independently represents hydrogen, halogen, hydroxy, amino, nitro, thiol, substituted or unsubstituted C.sub.1-C.sub.4 alkyl, substituted or unsubstituted alkoxy, or substituted or unsubstituted aryl; Y.sup.1a represents N, P, As, B, SiR.sup.5a, or CR.sup.5a; Y.sup.1b represents N, P, As, B, SiR.sup.5a, or CR.sup.5a; Y.sup.2c, Y.sup.2d, and Y.sup.2f each independently represents C or N; R.sup.5a each independently represents substituted or unsubstituted C.sub.1-C.sub.4 alkyl or substituted or unsubstituted aryl; Y.sup.3a, Y.sup.3b, Y.sup.3d, and Y.sup.3e each independently represents C, N, or Si; Y.sup.4a, Y.sup.4b, Y.sup.4d, and Y.sup.4e each independently represents C, N, or Si; and n is 0, 1, 2, 3, 4, or 5.
12. The organic light emitting device of claim 11, wherein: M is Pt or Pd; R.sup.1, R.sup.2, R.sup.3, and R.sup.4 each independently represents hydrogen, halogen, hydroxy, amino, nitro, thiol, substituted or unsubstituted C.sub.1-C.sub.4 alkyl, substituted or unsubstituted alkoxy, or substituted or unsubstituted aryl; Y.sup.1a represents N, P, SiR.sup.5a, or CR.sup.5a; Y.sup.1b represents N, P, SiR.sup.5a, or CR.sup.5a; Y.sup.2c, Y.sup.2d, and Y.sup.2f each independently represents C or N; R.sup.5a each independently represents substituted or unsubstituted C.sub.1-C.sub.4 alkyl or substituted or unsubstituted aryl; Y.sup.3a, Y.sup.3b, Y.sup.3d, and Y.sup.3e each independently represents C or N; Y.sup.4a, Y.sup.4b, Y.sup.4d, and Y.sup.4e each independently represents C or N; and n is 0, 1, or 2.
13. The organic light emitting device of claim 7, wherein the organometallic complex is represented by Formula IV: ##STR00054## wherein: M is Pt, Pd, or Ir; R.sup.1, R.sup.2, R.sup.3, or R.sup.4 each independently represents hydrogen, halogen, hydroxy, amino, nitro, thiol, substituted or unsubstituted C.sub.1-C.sub.4 alkyl, substituted or unsubstituted alkoxy, or substituted or unsubstituted aryl; Y.sup.1a represents O, S, S═O, O═S═O, Se, Se═O, O═Se═O, NR.sup.5a, PR.sup.5a, AsR.sup.5a, O═NR.sup.5a, O═PR.sup.5a, O═AsR.sup.5a, BR.sup.5a, SiR.sup.5aR.sup.5b, or CR.sup.5aR.sup.5b; Y.sup.1b and Y.sup.1c each independently represents N, P, As, B, SiR.sup.5a, or CR.sup.5a, Y.sup.2c or Y.sup.2d each independently represents C or N; R.sup.5a and R.sup.5b each independently represents substituted or unsubstituted C.sub.1-C.sub.4 alkyl or substituted or unsubstituted aryl; Y.sup.3a, Y.sup.3b, Y.sup.3d, and Y.sup.3e each independently represents C, N, or Si; Y.sup.4a, Y.sup.3b, Y.sup.3d, and Y.sup.4e each independently represents C, N, or Si; and n is 0, 1, 2, 3, 4, or 5.
14. The organic light emitting device of claim 7, wherein the organometallic complex has one of the following structures: ##STR00055##
15. The organic light emitting device of claim 1, comprising an electron blocking layer between the anode and the emissive layer.
16. The organic light emitting device of claim 15, wherein the electron blocking layer comprises a host material and a dopant.
17. The organic light emitting device of claim 16, wherein host material comprises a carbazole-based material.
18. The organic light emitting device of claim 17, wherein the carbazole-based material comprises one of the following structures: ##STR00056## wherein each of R.sup.1-R.sup.9 is independently hydrogen, nitro, hydroxyl, halogen, or substituted or unsubstituted amino, thio, alkyl, alkenyl, alkynyl, aryl, heteroaryl, cycloalkane, cycloalkane, heterocyclyl, alkoxy, haloalkyl, arylalkane, or arylalkene.
19. The organic light emitting device of claim 16, wherein the dopant is a fluorescent material.
20. The organic light emitting device of claim 19, wherein the fluorescent material comprises one of the following structures: 1. Aromatic Hydrocarbons and Their Derivatives ##STR00057## ##STR00058## ##STR00059## ##STR00060## ##STR00061## 2. Arylethylene, Arylacetylene and Their Derivatives ##STR00062## ##STR00063## ##STR00064## ##STR00065## 3. Heterocyclic Compounds and Their Derivatives ##STR00066## ##STR00067## ##STR00068## ##STR00069## ##STR00070## ##STR00071## ##STR00072## ##STR00073## ##STR00074## ##STR00075## ##STR00076## ##STR00077## ##STR00078## ##STR00079## ##STR00080## ##STR00081## ##STR00082## wherein: each of R.sup.11, R.sup.21, R.sup.31, R.sup.41, R.sup.51, R.sup.61, R.sup.71, and R.sup.81 is independently a mono-, di-, or tri-substitution, and if present each of R.sup.11, R.sup.21, R.sup.31, R.sup.41, R.sup.51, R.sup.61, R.sup.71, and R.sup.81 is independently hydrogen, deuterium, halogen, hydroxyl, thiol, nitro, cyano, nitrile, isonitrile, sulfinyl, mercapto, sulfo, carboxyl, hydrazino; substituted or unsubstituted: aryl, cycloalkyl, cycloalkenyl, heterocyclyl, heteroaryl, substituted or unsubstituted alkyl, alkenyl, alkynyl, amino, monoalkylamino, dialkylamino, monoarylamino, diarylamino, alkoxy, aryloxy, haloalkyl, aralkyl, ester, alkoxycarbonyl, acylamino, alkoxycarbonylamino, aryloxycarbonylamino, sulfonylamino, sulfamoyl, carbamoyl, alkylthio, ureido, phosphoramide, or silyl, each of Y.sup.a, Y.sup.b, Y.sup.c, Y.sup.d, Y.sup.e, Y.sup.f, Y.sup.g, Y.sup.h, Y.sup.i, Y.sup.j, Y.sup.k, Y.sup.l, Y.sup.m, Y.sup.n, Y.sup.o, and Y.sup.p is independently C, N, or B, each of U.sup.a, U.sup.b, and U.sup.c is independently CH.sub.2, CR.sup.1R.sup.2, C═O, CH.sub.2, SiR.sup.1R.sup.2, GeH.sub.2, GeR.sup.1R.sup.2, NH, NR.sup.3, PH, PR.sup.3, R.sup.3P═O, AsR.sup.3, R.sup.3As═O, O, S, S═O, SO.sub.2, Se, Se═O, SeO.sub.2, BH, BR.sup.3, R.sup.3Bi═O, BiH, or BiR.sup.3, and each of W, W.sup.a, W.sup.b, and W.sup.c is independently CH, CR.sup.1, SiR.sup.1, GeH, GeR.sup.1, N, P, B, Bi, or Bi═O.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0007]
[0008]
[0009]
[0010]
[0011]
[0012]
[0013]
[0014]
[0015]
[0016]
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[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
DETAILED DESCRIPTION
[0025]
[0026] The electron blocking material, the dopant, or both in EBL 110 may be selected to extend the operational lifetime of an OLED with a doped EBL. In one example, the electron blocking material in EBL 110 is selected to confine excitons inside EML 112, thereby reducing or eliminating exciton quenching by HTL 108 and extending the operational lifetime of the OLED. In another example, the electron blocking material in EBL 110 is selected to alleviate charge imbalance in EML 112, thereby extending the operational lifetime of the OLED.
[0027] Organometallic complexes having Formula I may be used as emitters in the devices described herein:
##STR00001##
[0028] wherein:
[0029] M is Pt, Pd, or Ir;
[0030] R.sup.1, R.sup.2, R.sup.3, R.sup.4, R.sup.8, R.sup.9, and R.sup.10 each independently represents hydrogen, halogen, hydroxy, amino, nitro, thiol, substituted or unsubstituted C.sub.1-C.sub.4 alkyl, substituted or unsubstituted alkoxy, or substituted or unsubstituted aryl;
[0031] Y.sup.1a represents O, S, S═O, O═S═O, Se, Se═O, O═Se═O, N, NR.sup.5a, P, PR.sup.5a, As, AsR.sup.5a, O═NR.sup.5a, O═PR.sup.5a, O═AsR.sup.5a, B, BR.sup.5a, SiR.sup.5a, SiR.sup.5aR.sup.5b, CR.sup.5a, or CR.sup.5aR.sup.5b;
[0032] Y.sup.1b and Y.sup.1c each independently represents O, S, S═O, O═S═O, Se, Se═O, O═Se═O, N, NR.sup.5a, P, PR.sup.5a, As, AsR.sup.5a, O═NR.sup.5a, O═PR.sup.5a, O═AsR.sup.5a, B, BR.sup.5a, SiR.sup.5a, SiR.sup.5aR.sup.5b, CR.sup.5a, CR.sup.5aR.sup.5b, or a single bond, wherein if Y.sup.1b represents a single bond, Y.sup.2e and Y.sup.4c are directly linked by a single bond, and if Y.sup.1c represents a single bond, Y.sup.2b and Y.sup.3c are directly linked by a single bond;
[0033] Y.sup.2a, Y.sup.2b, Y.sup.2c, Y.sup.2d, Y.sup.2e, and Y.sup.2f each independently represents C or N;
[0034] R.sup.5a, R.sup.5b, and R.sup.5c each independently represents substituted or unsubstituted C.sub.1-C.sub.4 alkyl or substituted or unsubstituted aryl;
[0035] R.sup.6a, R.sup.6b, and R.sup.6c each independently represents substituted or unsubstituted C.sub.1-C.sub.4 alkyl or substituted or unsubstituted aryl;
[0036] R.sup.7a, R.sup.7b, and R.sup.7c each independently represents substituted or unsubstituted C.sub.1-C.sub.4 alkyl or substituted or unsubstituted aryl;
[0037] Y.sup.3a, Y.sup.3b, Y.sup.3c, Y.sup.3d, and Y.sup.3e each independently represents C, N, Si, O, or S;
[0038] Y.sup.4a, Y.sup.4b, Y.sup.4c, Y.sup.4d, and Y.sup.4e each independently represents C, N, Si, O, or S;
[0039] each of L.sup.1, L.sup.2, L.sup.3, L.sup.4, L.sup.5, and L.sup.6 is independently absent or represents a linking group;
##STR00002##
represents one of the following:
##STR00003##
[0040] wherein Z.sup.1, Z.sup.2 independently represents O, S, S═O, O═S═O, Se, Se═O, O═Se═O, NR.sup.5a, PR.sup.5a, AsR.sup.5a, O═NR.sup.5a, O═PR.sup.5a, O═AsR.sup.5a, BR.sup.5a, SiR.sup.5aR.sup.5b, or CR.sup.5aR.sup.5b;
##STR00004##
represents one of the following:
##STR00005##
[0041] wherein Z.sup.3 and Z.sup.4 each independently represents O, S, S═O, O═S═O, Se, Se═O, O═Se═O, NR.sup.6a, PR.sup.6a, AsR.sup.6a, O═NR.sup.6a, O═PR.sup.6a, O═AsR.sup.6a, BR.sup.6a, SiR.sup.6aR.sup.6b, or CR.sup.6aR.sup.6b;
##STR00006##
represents one of the following:
##STR00007##
[0042] wherein Z.sup.5 and Z.sup.6 each independently represents O, S, S═O, O═S═O, Se, Se═O, O═Se═O, NR.sup.7a, PR.sup.7a, AsR.sup.7a, O═NR.sup.7a, O═PR.sup.7a, O═AsR.sup.7a, BR.sup.7a, SiR.sup.7aR.sup.7b, or CR.sup.7aR.sup.7b;
[0043] Ar.sup.3 and Ar.sup.4 each independently represents a substituted or unsubstituted 5-membered ring or a 6-membered aromatic ring; and
[0044] n is 0, 1, 2, 3, 4, or 5.
[0045] In some implementations, wherein M is Pt(II) or Pd(II).
[0046] In some implementations, R.sup.2, R.sup.3, R.sup.4, R.sup.8, R.sup.9, and R.sup.10 each independently represents hydrogen, halogen, hydroxy, amino, substituted or unsubstituted C.sub.1-C.sub.4 alkyl, or substituted or unsubstituted alkoxy. In some implementations, R.sup.2, R.sup.3, R.sup.4, R.sup.8, R.sup.9, and R.sup.10 each independently represents hydrogen, halogen, hydroxy, or substituted or unsubstituted C.sub.1-C.sub.4 alkyl. In some implementations, R.sup.2, R.sup.3, R.sup.4, R.sup.8, R.sup.9, and R.sup.10 each independently represents hydrogen or substituted or unsubstituted C.sub.1-C.sub.4 alkyl.
[0047] In some implementations, Y.sup.1a represents O, S, S═O, O═S═O, Se, N, NR.sup.5a, P, PR.sup.5a, As, AsR.sup.5a, B, BR.sup.5a, SiR.sup.5a, SiR.sup.5aR.sup.5b, CR.sup.5a, or CR.sup.5aR.sup.5b. In some implementations, Y.sup.1a represents O, S, N, NR.sup.5a, P, PR.sup.5a, SiR.sup.5a, SiR.sup.5aR.sup.5b, CR.sup.5a, or CR.sup.5aR.sup.5b. In some implementations, Y.sup.1a represents O, S, NR.sup.5a, PR.sup.5a, SiR.sup.5aR.sup.5b, or CR.sup.5aR.sup.5b.
[0048] In some implementations, Y.sup.1b and Y.sup.1c each independently represents O, S, S═O, O═S═O, Se, N, NR.sup.5a, P, PR.sup.5a, As, AsR.sup.5a, B, BR.sup.5a, SiR.sup.5a, SiR.sup.5aR.sup.5b, CR.sup.5a, CR.sup.5aR.sup.5b, or a single bond, wherein if Y.sup.1b represents a single bond, Y.sup.2e and Y.sup.4c are directly linked by a single bond, and if Y.sup.1c represents a single bond, Y.sup.2b and Y.sup.3c are directly linked by a single bond.
[0049] In some implementations, Y.sup.1b and Y.sup.1c each independently represents O, S, N, NR.sup.5a, P, PR.sup.5a, SiR.sup.5a, SiR.sup.5aR.sup.5b, CR.sup.5a, CR.sup.5aR.sup.5b, or a single bond, wherein if Y.sup.1b represents a single bond, Y.sup.2e and Y.sup.4c are directly linked by a single bond, and if Y.sup.1c represents a single bond, Y.sup.2b and Y.sup.3c are directly linked by a single bond.
[0050] In some implementations, Y.sup.1b and Y.sup.1c each independently represents N, P, SiR.sup.5a, or CR.sup.5a, or a single bond, wherein if Y.sup.1b represents a single bond, Y.sup.2e and Y.sup.4c are directly linked by a single bond, and if Y.sup.1c represents a single bond, Y.sup.2b and Y.sup.3c are directly linked by a single bond.
[0051] In some implementations, Y.sup.2a, Y.sup.2b, Y.sup.2c, Y.sup.2d, Y.sup.2c, and Y.sup.2f each independently represents C. In some implementations, Y.sup.2a, Y.sup.2b, Y.sup.2c, Y.sup.2d, Y.sup.2e, and Y.sup.2f each independently represents N.
[0052] In some implementations, R.sup.5a, R.sup.5b, and R.sup.5c each independently represents substituted or unsubstituted C.sub.1-C.sub.4 alkyl or substituted or unsubstituted aryl. In some implementations, R.sup.5a, R.sup.5b, and R.sup.5c each independently represents substituted or unsubstituted aryl.
[0053] In some implementations, R.sup.6a, R.sup.6b, and R.sup.6c each independently represents substituted or unsubstituted C.sub.1-C.sub.4 alkyl. In some implementations, R.sup.6a, R.sup.6b, and R.sup.6c each independently represents or substituted or unsubstituted aryl.
[0054] In some implementations, R.sup.7a, R.sup.7b, and R.sup.7c each independently represents substituted or unsubstituted C.sub.1-C.sub.4 alkyl. In some implementations, R.sup.7a, R.sup.7b, and R.sup.7c each independently represents or substituted or unsubstituted aryl.
[0055] In some implementations, Y.sup.3a, Y.sup.3b, Y.sup.3c, Y.sup.3d, and Y.sup.3e each independently represents C or Si. In some implementations, Y.sup.3a, Y.sup.3b, Y.sup.3c, Y.sup.3d, and Y.sup.3e each independently represents O or S. In some implementations, Y.sup.3a, Y.sup.3b, Y.sup.3c, Y.sup.3d, and Y.sup.3e each independently represents C or N.
[0056] In some implementations, Y.sup.4a, Y.sup.4b, Y.sup.4c, Y.sup.4d, and Y.sup.4e each independently represents C or Si. In some implementations, Y.sup.4a, Y.sup.4b, Y.sup.4c, Y.sup.4d, and Y.sup.4e each independently represents O or S. In some implementations, Y.sup.4a, Y.sup.4b, Y.sup.4c, Y.sup.4d, and Y.sup.4e each independently represents C or N.
[0057] In some implementations, the organometallic complex is represented by Formula II:
##STR00008##
[0058] wherein:
[0059] M is Pt, Pd, or Ir;
[0060] R.sup.1, R.sup.2, R.sup.3, and R.sup.4 each independently represents hydrogen, halogen, hydroxy, amino, nitro, thiol, substituted or unsubstituted C.sub.1-C.sub.4 alkyl, substituted or unsubstituted alkoxy, or substituted or unsubstituted aryl;
[0061] Y.sup.1a represents O, S, S═O, O═S═O, Se, Se═O, O═Se═O, NR.sup.5a, PR.sup.5a, AsR.sup.5a, O═NR.sup.5a, O═PR.sup.5a, O═AsR.sup.5a, BR.sup.5a, SiR.sup.5aR.sup.5b, or CR.sup.5aR.sup.5b;
[0062] Y.sup.2a, Y.sup.2c, Y.sup.2d, and Y.sup.2f each independently represents C or N;
[0063] R.sup.5a, R.sup.5b, and R.sup.5c each independently represents substituted or unsubstituted C.sub.1-C.sub.4 alkyl or substituted or unsubstituted aryl;
[0064] Y.sup.3a, Y.sup.3b, Y.sup.3d, and Y.sup.3e each independently represents C, N, or Si;
[0065] Y.sup.4a, Y.sup.4b, Y.sup.4d, and Y.sup.4e each independently represents C, N, or Si;
[0066] n is 0, 1, 2, 3, or 4.
[0067] In some implementations, the organometallic complex is represented by Formula II wherein:
[0068] M is Pt or Pd;
[0069] R.sup.1, R.sup.2, R.sup.3, and R.sup.4 each independently represents hydrogen, halogen, hydroxy, amino, nitro, thiol, substituted or unsubstituted C.sub.1-C.sub.4 alkyl, substituted or unsubstituted alkoxy, or substituted or unsubstituted aryl;
[0070] Y.sup.1a represents O, S, NR.sup.5a, PR.sup.5a, SiR.sup.5aR.sup.5b, or CR.sup.5aR.sup.5b;
[0071] Y.sup.2a, Y.sup.2c, Y.sup.2d, and Y.sup.2f each independently represents C or N;
[0072] R.sup.5a, R.sup.5b, and R.sup.5c each independently represents substituted or unsubstituted C.sub.1-C.sub.4 alkyl or substituted or unsubstituted aryl;
[0073] Y.sup.3a, Y.sup.3b, Y.sup.3d, and Y.sup.3e each independently represents C or N;
[0074] Y.sup.4a, Y.sup.4b, Y.sup.4d, and Y.sup.4e each independently represents C or N;
[0075] n is 0, 1, or 2.
[0076] In some implementations, the organometallic complex is represented by Formula II wherein M is Pt or Pd.
[0077] In some implementations, the organometallic complex is represented by Formula II wherein R.sup.1, R.sup.2, R.sup.3, and R.sup.4 each independently represents hydrogen, halogen, hydroxy, amino, substituted or unsubstituted C.sub.1-C.sub.4 alkyl, substituted or unsubstituted alkoxy, or substituted or unsubstituted aryl. In some implementations, the organometallic complex is represented by Formula II wherein R.sup.1, R.sup.2, R.sup.3, and R.sup.4 each independently represents hydrogen, halogen, hydroxy, amino, substituted or unsubstituted C.sub.1-C.sub.4 alkyl. In some implementations, the organometallic complex is represented by Formula II wherein R.sup.1, R.sup.2, R.sup.3, and R.sup.4 each independently represents hydrogen or substituted or unsubstituted C.sub.1-C.sub.4 alkyl.
[0078] In some implementations, the organometallic complex is represented by Formula II wherein Y.sup.1a represents O, S, S═O, O═S═O, Se, NR.sup.5a, PR.sup.5a, AsR.sup.5a, BR.sup.5a, SiR.sup.5aR.sup.5b, or CR.sup.5aR.sup.5b. In some implementations, the organometallic complex is represented by Formula II wherein Y.sup.1a represents O, S, NR.sup.5a, PR.sup.5a, SiR.sup.5aR.sup.5b, or CR.sup.5aR.sup.5b. In some implementations, the organometallic complex is represented by Formula II wherein Y.sup.1a represents O, S, NR.sup.5a, SiR.sup.5aR.sup.5b, or CR.sup.5aR.sup.5b. In some implementations, the organometallic complex is represented by Formula II wherein Y.sup.1a represents O, NR.sup.5a, or CR.sup.5aR.sup.5b.
[0079] In some implementations, the organometallic complex is represented by Formula II wherein Y.sup.2a, Y.sup.2c, Y.sup.2d, and Y.sup.2f each independently represents C. In some implementations, the organometallic complex is represented by Formula II wherein Y.sup.2a, Y.sup.2c, Y.sup.2d, and Y.sup.2f each independently represents N.
[0080] In some implementations, the organometallic complex is represented by Formula II wherein R.sup.5a, R.sup.5b, and R.sup.5c each independently represents substituted or unsubstituted C.sub.1-C.sub.4 alkyl. In some implementations, the organometallic complex is represented by Formula II wherein R.sup.5a, R.sup.5b, and R.sup.5c each independently represents substituted or unsubstituted aryl.
[0081] In some implementations, the organometallic complex is represented by Formula II wherein Y.sup.3a, Y.sup.3b, Y.sup.3d, and Y.sup.3e each independently represents C or N. In some implementations, the organometallic complex is represented by Formula II wherein Y.sup.3a, Y.sup.3b, Y.sup.3d, and Y.sup.3e each independently represents C or Si.
[0082] In some implementations, the organometallic complex is represented by Formula II wherein Y.sup.4a, Y.sup.4b, Y.sup.4d, and Y.sup.4e each independently represents C or N. In some implementations, the organometallic complex is represented by Formula II wherein Y.sup.4a, Y.sup.4b, Y.sup.4d, and Y.sup.4e each independently represents C or Si.
[0083] In some implementations, the organometallic complex is represented by Formula II wherein n is 0, 1, 2, or 3. In some implementations, the organometallic complex is represented by Formula II wherein n is 1. In some implementations, the organometallic complex is represented by Formula II wherein n is 0.
[0084] In some implementations, the organometallic complex is represented by Formula III:
##STR00009##
[0085] wherein:
[0086] M is Pt, Pd, or Ir;
[0087] R.sup.1, R.sup.2, R.sup.3, and R.sup.4 each independently represents hydrogen, halogen, hydroxy, amino, nitro, thiol, substituted or unsubstituted C.sub.1-C.sub.4 alkyl, substituted or unsubstituted alkoxy, or substituted or unsubstituted aryl;
[0088] Y.sup.1a represents N, P, As, B, SiR.sup.5a, or CR.sup.5a;
[0089] Y.sup.1b represents N, P, As, B, SiR.sup.5a, or CR.sup.5a;
[0090] Y.sup.2c, Y.sup.2d, and Y.sup.2f each independently represents C or N;
[0091] R.sup.5a each independently represents substituted or unsubstituted C.sub.1-C.sub.4 alkyl or substituted or unsubstituted aryl;
[0092] Y.sup.3a, Y.sup.3b, Y.sup.3d, and Y.sup.3e each independently represents C, N, or Si;
[0093] Y.sup.4a, Y.sup.4b, Y.sup.4d, and Y.sup.4e each independently represents C, N, or Si; and
[0094] n is 0, 1, 2, 3, 4, or 5.
[0095] In some implementations, the organometallic complex is represented by Formula III wherein:
[0096] M is Pt or Pd;
[0097] R.sup.1, R.sup.2, R.sup.3, and R.sup.4 each independently represents hydrogen, halogen, hydroxy, amino, nitro, thiol, substituted or unsubstituted C.sub.1-C.sub.4 alkyl, substituted or unsubstituted alkoxy, or substituted or unsubstituted aryl;
[0098] Y.sup.1a represents N, P, SiR.sup.5a, or CR.sup.5a;
[0099] Y.sup.1b represents N, P, SiR.sup.5a, or CR.sup.5a;
[0100] Y.sup.2c, Y.sup.2d, Y.sup.3d, and Y.sup.2f each independently represents C or N;
[0101] R.sup.5a each independently represents substituted or unsubstituted C.sub.1-C.sub.4 alkyl or substituted or unsubstituted aryl;
[0102] Y.sup.3a, Y.sup.3b, Y.sup.3d, and Y.sup.3e each independently represents C or N;
[0103] Y.sup.4a, Y.sup.4b, Y.sup.4d, and Y.sup.4e each independently represents C or N; and
[0104] n is 0, 1, or 2.
[0105] In some implementations, the organometallic complex is represented by Formula III wherein M is Pt or Pd. In some implementations, the organometallic complex is represented by Formula III wherein R.sup.1, R.sup.2, R.sup.3, and R.sup.4 each independently represents hydrogen, halogen, hydroxy, amino, substituted or unsubstituted C.sub.1-C.sub.4 alkyl, substituted or unsubstituted alkoxy, or substituted or unsubstituted aryl. In some implementations, the organometallic complex is represented by Formula III wherein R.sup.1, R.sup.2, R.sup.3, and R.sup.4 each independently represents hydrogen, halogen, hydroxy, amino, or substituted or unsubstituted C.sub.1-C.sub.4 alkyl. In some implementations, the organometallic complex is represented by Formula III wherein R.sup.1, R.sup.2, R.sup.3, and R.sup.4 each independently represents hydrogen or substituted or unsubstituted C.sub.1-C.sub.4 alkyl.
[0106] In some implementations, the organometallic complex is represented by Formula III wherein Y.sup.1a represents N, P, SiR.sup.5a, or CR.sup.5a. In some implementations, the organometallic complex is represented by Formula III wherein Y.sup.1a represents N or P. In some implementations, the organometallic complex is represented by Formula III wherein Y.sup.1a represents SiR.sup.5aor CR.sup.5a. In some implementations, the organometallic complex is represented by Formula III wherein Y.sup.1a represents N or CR.sup.5a.
[0107] In some implementations, the organometallic complex is represented by Formula III wherein Y.sup.1b represents N, P, SiR.sup.5a, or CR.sup.5a. In some implementations, the organometallic complex is represented by Formula III wherein Y.sup.1b represents N or P. In some implementations, the organometallic complex is represented by Formula III wherein Y.sup.1b represents SiR.sup.5aor CR.sup.5a. In some implementations, the organometallic complex is represented by Formula III wherein Y.sup.1b represents N or CR.sup.5a.
[0108] In some implementations, the organometallic complex is represented by Formula III wherein Y.sup.2c, Y.sup.2d, and Y.sup.2f each independently represents C. In some implementations, the organometallic complex is represented by Formula III wherein Y.sup.2c, Y.sup.2d, and Y.sup.2f each independently represents N.
[0109] In some implementations, the organometallic complex is represented by Formula III wherein R.sup.5a each independently represents substituted or unsubstituted C.sub.1-C.sub.4 alkyl. In some implementations, the organometallic complex is represented by Formula III wherein R.sup.5a each independently represents substituted or unsubstituted aryl.
[0110] In some implementations, the organometallic complex is represented by Formula III wherein Y.sup.3a, Y.sup.3b, Y.sup.3d, and Y.sup.3e each independently represents C or N. In some implementations, the organometallic complex is represented by Formula III wherein Y.sup.3a, Y.sup.3b, Y.sup.3d, and Y.sup.3e each independently represents C or Si. In some implementations, the organometallic complex is represented by Formula III wherein Y.sup.3a, Y.sup.3b, Y.sup.3d, and Y.sup.3e each independently represents N.
[0111] In some implementations, the organometallic complex is represented by Formula III wherein Y.sup.4a, Y.sup.4b, Y.sup.4d, and Y.sup.4e represents C or N. In some implementations, the organometallic complex is represented by Formula III wherein Y.sup.4a, Y.sup.4b, Y.sup.4d, and Y.sup.4e each independently represents C or Si. In some implementations, the organometallic complex is represented by Formula III wherein Y.sup.4a, Y.sup.4b, Y.sup.4d, and Y.sup.4e each independently represents N.
[0112] In some implementations, the organometallic complex is represented by Formula III wherein n is 0, 1, 2, or 3. In some implementations, the organometallic complex is represented by Formula III wherein n is 0. In some implementations, the organometallic complex is represented by Formula III wherein n is 1.
[0113] In some implementations, the organometallic complex is represented by Formula IV:
##STR00010##
[0114] wherein:
[0115] M is Pt, Pd, or Ir;
[0116] R.sup.1, R.sup.2, R.sup.3, or R.sup.4 each independently represents hydrogen, halogen, hydroxy, amino, nitro, thiol, substituted or unsubstituted C.sub.1-C.sub.4 alkyl, substituted or unsubstituted alkoxy, or substituted or unsubstituted aryl;
[0117] Y.sup.1a represents O, S, S═O, O═S═O, Se, Se═O, O═Se═O, NR.sup.5a, PR.sup.5a, AsR.sup.5a, O═NR.sup.5a, O═PR.sup.5a, O═AsR.sup.5a, BR.sup.5a, SiR.sup.5aR.sup.5b, or CR.sup.5aR.sup.5b;
[0118] Y.sup.1b and Y.sup.1c each independently represents N, P, As, B, SiR.sup.5a, or CR.sup.5a,
[0119] Y.sup.2c or Y.sup.2d each independently represents C or N;
[0120] R.sup.5a and R.sup.5b each independently represents substituted or unsubstituted C.sub.1-C.sub.4 alkyl or substituted or unsubstituted aryl;
[0121] Y.sup.3a, Y.sup.3b, Y.sup.3d, and Y.sup.3e each independently represents C, N, or Si;
[0122] Y.sup.4a, Y.sup.4b, Y.sup.4d, and Y.sup.4e each independently represents C, N, or Si; and
[0123] n is 0, 1, 2, 3, 4, or 5.
[0124] In some implementations, the organometallic complex is represented by Formula IV wherein:
[0125] M is Pt or Pd;
[0126] R.sup.1, R.sup.2, R.sup.3, or R.sup.4 each independently represents hydrogen, halogen, hydroxy, amino, nitro, thiol, substituted or unsubstituted C.sub.1-C.sub.4 alkyl, substituted or unsubstituted alkoxy, or substituted or unsubstituted aryl;
[0127] Y.sup.1a represents O, S, NR.sup.5a, PR.sup.5a, SiR.sup.5aR.sup.5b, or CR.sup.5aR.sup.5b;
[0128] Y.sup.1b and Y.sup.1c each independently represents N, P, SiR.sup.5a, or CR.sup.5a,
[0129] Y.sup.2c or Y.sup.2d each independently represents C or N;
[0130] R.sup.5a and R.sup.5b each independently represents substituted or unsubstituted C.sub.1-C.sub.4 alkyl or substituted or unsubstituted aryl;
[0131] Y.sup.3a, Y.sup.3b, Y.sup.3d, and Y.sup.3e each independently represents C or N;
[0132] Y.sup.4a, Y.sup.4b, Y.sup.4d, and Y.sup.4e each independently represents C or N; and
[0133] n is 0, 1, or 2.
[0134] In some implementations, the organometallic complex is represented by Formula IV wherein M is Pt or Pd.
[0135] In some implementations, the organometallic complex is represented by Formula IV wherein R.sup.1, R.sup.2, R.sup.3, or R.sup.4 each independently represents hydrogen, halogen, hydroxy, amino, substituted or unsubstituted C.sub.1-C.sub.4 alkyl, substituted or unsubstituted alkoxy, or substituted or unsubstituted aryl. In some implementations, the organometallic complex is represented by Formula IV wherein R.sup.1, R.sup.2, R.sup.3, or R.sup.4 each independently represents hydrogen, halogen, hydroxy, amino, substituted or unsubstituted C.sub.1-C.sub.4 alkyl. In some implementations, the organometallic complex is represented by Formula IV wherein R.sup.1, R.sup.2, R.sup.3, or R.sup.4 each independently represents hydrogen or substituted or unsubstituted C.sub.1-C.sub.4 alkyl.
[0136] In some implementations, the organometallic complex is represented by Formula IV wherein Y.sup.1a represents O, S, S═O, O═S═O, Se, Se═O, O═Se═O, NR.sup.5a, PR.sup.5a, AsR.sup.5a, BR.sup.5a, SiR.sup.5aR.sup.5b, or CR.sup.5aR.sup.5b. In some implementations, the organometallic complex is represented by Formula IV wherein Y.sup.1a represents O, S, S═O, O═S═O, NR.sup.5a, PR.sup.5a, BR.sup.5a, SiR.sup.5aR.sup.5b, or CR.sup.5aR.sup.5b. In some implementations, the organometallic complex is represented by Formula IV wherein Y.sup.1a represents O, S, NR.sup.5a, PR.sup.5a, SiR.sup.5aR.sup.5b, or CR.sup.5aR.sup.5b. In some implementations, the organometallic complex is represented by Formula IV wherein Y.sup.1a represents O, NR.sup.5a, or CR.sup.5aR.sup.5b.
[0137] In some implementations, the organometallic complex is represented by Formula IV wherein Y.sup.1b and Y.sup.1c each independently represents N, P, SiR.sup.5a, or CR.sup.5a. In some implementations, the organometallic complex is represented by Formula IV wherein Y.sup.1b and Y.sup.1c each independently represents N or P. In some implementations, the organometallic complex is represented by Formula IV wherein Y.sup.1b and Y.sup.1c each independently represents SiR.sup.5aor CR.sup.5a. In some implementations, the organometallic complex is represented by Formula IV wherein Y.sup.1b and Y.sup.1c each independently represents N or CR.sup.5a.
[0138] In some implementations, the organometallic complex is represented by Formula IV wherein Y.sup.2c or Y.sup.2d each independently represents C. In some implementations, the organometallic complex is represented by Formula IV wherein Y.sup.2c or Y.sup.2d each independently represents N.
[0139] In some implementations, the organometallic complex is represented by Formula IV wherein R.sup.5a and R.sup.5b each independently represents substituted or unsubstituted C.sub.1-C.sub.4 alkyl. In some implementations, the organometallic complex is represented by Formula IV wherein R.sup.5a and R.sup.5b each independently represents substituted or unsubstituted aryl.
[0140] In some implementations, the organometallic complex is represented by Formula IV wherein Y.sup.3a, Y.sup.3b, Y.sup.3d, and Y.sup.3e each independently represents C or N. In some implementations, the organometallic complex is represented by Formula IV wherein Y.sup.3a, Y.sup.3b, Y.sup.3d, and Y.sup.3e each independently represents C or Si. In some implementations, the organometallic complex is represented by Formula IV wherein Y.sup.3a, Y.sup.3b, Y.sup.3d, and Y.sup.3e each independently represents N.
[0141] In some implementations, the organometallic complex is represented by Formula IV wherein Y.sup.4a, Y.sup.4b, Y.sup.4d, and Y.sup.4e each independently represents C, N, or Si. In some implementations, the organometallic complex is represented by Formula IV wherein Y.sup.4a, Y.sup.4b, Y.sup.4d, and Y.sup.4e each independently represents C or N. In some implementations, the organometallic complex is represented by Formula IV wherein Y.sup.4a, Y.sup.4b, Y.sup.4d, and Y.sup.4e each independently represents C or Si. In some implementations, the organometallic complex is represented by Formula IV wherein Y.sup.4a, Y.sup.4b, Y.sup.4d, and Y.sup.4e each independently represents N.
[0142] In some implementations, the organometallic complex is represented by Formula IV wherein n is 0, 1, 2, or 3. In some implementations, the organometallic complex is represented by Formula IV wherein n is 0. In some implementations, the organometallic complex is represented by Formula IV wherein n is 1.
[0143] Suitable electron blocking materials include carbazole based host materials, such as those shown below.
##STR00011##
where each of R.sup.1-R.sup.9 is independently hydrogen, nitro, hydroxyl, halogen, or substituted or unsubstituted amino, thio, alkyl, alkenyl, alkynyl, aryl, heteroaryl, cycloalkane, cycloalkane, heterocyclyl, alkoxy, haloalkyl, arylalkane, or arylalkene.
[0144] In some implementations, suitable electron blocking materials include carbazole based host materials, such as those shown below.
##STR00012##
where each of R.sup.1-R.sup.3 is independently hydrogen, nitro, hydroxyl, halogen, or substituted or unsubstituted amino, thio, alkyl, alkenyl, alkynyl, aryl, heteroaryl, cycloalkane, cycloalkane, heterocyclyl, alkoxy, haloalkyl, arylalkane, or arylalkene.
[0145] As described herein, a doped electron blocking material includes a fluorescent dopant. Suitable fluorescent dopants include those shown below.
[0146] 1. Aromatic Hydrocarbons and their Derivatives
##STR00013## ##STR00014## ##STR00015## ##STR00016## ##STR00017##
[0147] 2. Arylethylene, Arylacetylene and their Derivatives
##STR00018## ##STR00019## ##STR00020## ##STR00021##
[0148] 3. Heterocyclic Compounds and their Derivatives
##STR00022## ##STR00023## ##STR00024## ##STR00025## ##STR00026## ##STR00027## ##STR00028## ##STR00029## ##STR00030## ##STR00031## ##STR00032## ##STR00033## ##STR00034## ##STR00035## ##STR00036## ##STR00037## ##STR00038##
where:
[0149] each of R.sup.11, R.sup.21, R.sup.31, R.sup.41, R.sup.51, R.sup.61, R.sup.71, and R.sup.81 is independently a mono-, di-, or tri-substitution, and if present each of R.sup.11, R.sup.21, R.sup.31, R.sup.41, R.sup.51, R.sup.61, R.sup.71, and R.sup.81 is independently hydrogen, deuterium, halogen, hydroxyl, thiol, nitro, cyano, nitrile, isonitrile, sulfinyl, mercapto, sulfo, carboxyl, hydrazino; substituted or unsubstituted: aryl, cycloalkyl, cycloalkenyl, heterocyclyl, heteroaryl, substituted or unsubstituted alkyl, alkenyl, alkynyl, amino, monoalkylamino, dialkylamino, monoarylamino, diarylamino, alkoxy, aryloxy, haloalkyl, aralkyl, ester, alkoxycarbonyl, acylamino, alkoxycarbonylamino, aryloxycarbonylamino, sulfonylamino, sulfamoyl, carbamoyl, alkylthio, ureido, phosphoramide, or silyl,
[0150] each of Y.sup.a, Y.sup.b, Y.sup.c, Y.sup.d, Y.sup.e, Y.sup.f, Y.sup.g, Y.sup.h, Y.sup.i, Y.sup.j, Y.sup.k, Y.sup.l, Y.sup.m, Y.sup.n, Y.sup.o, and Y.sup.p is independently C, N, or B,
[0151] each of U.sup.a, U.sup.b, and U.sup.c is independently CH.sub.2, CR.sup.1R.sup.2, C═O, CH.sub.2, SiR.sup.1R.sup.2, GeH.sub.2, GeR.sup.1R.sup.2, NH, NR.sup.3, PH, PR.sup.3, R.sup.3P═O, AsR.sup.3, R.sup.3As═O, O, S, S═O, SO.sub.2, Se, Se═O, SeO.sub.2, BH, BR.sup.3, R.sup.3Bi═O, BiH, or BiR.sup.3, and
[0152] each of W, W.sup.a, W.sup.b, and W.sup.c is independently CH, CR′, SiR.sup.1, GeH, GeR.sup.1, N, P, B, Bi, or Bi═O.
[0153]
[0154] Components in the devices described herein are listed below. [0155] ITO (Anode): indium tin oxide [0156] HATCN (HIL): dipyrazino[2,3f:2′,3′-h]quinoxaline 2,3,6,7,10,11-hexacarbonitrile [0157] NPD (HTL): N,N′-di-1-naphthyl-N,N-diphenyl-1,1′-biphenyl-4,4′diamine [0158] TrisPCz (EBL): 9,9′,9″-triphenyl-9H,9′H,9″H-3,3′:6′,3″-tercarbazole
##STR00039##
Pd3O3 (EML Emitting Material):
[0159] ##STR00040##
PtN3N (EML Emitting Material)
[0160] ##STR00041##
PdN3N (EML Emitting Material)
[0161] ##STR00042##
PtNON (EML Emitting Material)
[0162] ##STR00043## [0163] mCBP (EML host): 3,3-di(9H-carbazol-9-yl)biphenyl [0164] BAlq (HBL): bis(2-methyl-8-quinolinolate)-4-(phenyl phenolato) aluminum [0165] BPyTP (ETL): 2,7-di(2,2′-bipyridin-5-yl)triphenylene [0166] LiF (HIL): lithium fluoride [0167] Al (Cathode): aluminum [0168] TBPe (a blue fluorescent emitter): 2,5,8,11-tetra-tert-butylperylene
##STR00044##
[0169] Devices 1 and 2 were prepared with the structures below. [0170] Device 1: ITO/HATCN/NPD/TrisPCz/10% Pd3O3:mCBP/BAlq/BPyTP/LiF/Al [0171] Device 2: ITO/HATCN/NPD/10% Pd3O3:mCBP/BAlq/BPyTP/LiF/Al
Thus, Device 1 includes an EBL formed of TrisPCz, and Device 2 does not include an EBL.
[0172] Pd3O3 is a planar deep blue emitting palladium complex for use in excimer based white devices. As shown in
[0173] As shown in
[0174] Devices 3 and 4 were prepared with the following structures. [0175] Device 3: ITO/HATCN/NPD/TrisPCz (6 nm)/4% TBPe:TrisPCz (4 nm)/10% Pd3O3:mCBP/BAlq/BPyTP/LiF/Al [0176] Device 4: ITO/HATCN/NPD/4% TBPe:TrisPCz (4 nm)/10% Pd3O3:mCBP/BAlq/BPyTP/LiF/Al
Thus, Device 3 includes an undoped EBL (TrisPCz) and a doped EBL (4% TBPe:TrisPCz), while Device 4 includes a doped EBL only.
[0177]
[0178] Notably, the dopant concentration of TBPe should be relatively low to reduce or prevent possible quenching of Pd3O3 excitons. As shown in
[0179] Higher efficiency in organic light emitting diodes (OLEDs) may be achieved by confining electron and hole recombination within the EML. To achieve this, electron transporting/hole blocking and hole transporting/electron blocking layers that preferentially transport one charge type while blocking the other may be used.
[0184] As can be seen in the comparison of Device 5 (single EML, with EBL) and Device 6 (single EML, no EBL) in
[0185] Higher efficiency in OLEDs may be achieved by confining electron and hole recombination within the EML. To achieve this, electron transporting/hole blocking and hole transporting/electron blocking layers that preferentially transport one charge type while blocking the other may be used. The addition of an electron blocking layer (EBL) including a carbazole compound shows an enhancement in the peak EQE of the device. This enhancement may be attributed to the role of the EBL in confining electrons within the emissive layer. This confinement, however, may lead to charge buildup at the EML-EBL interface, thereby resulting in a faster device degradation process.
[0186] Exciton formation may be at least partially contained inside of the emissive layer by controlling hole-electron recombination with a multi-EML, with or without a charge-blocking layer. As described herein, a multi-EML generally refers a first EML in direct contact with a second EML, where the emitter concentration of the first EML (hole favorable) exceeds that of the second EML (electron favorable).
[0187]
[0192] Comparison of Devices 5 (single EML, with EBL) and 6 (single EML, no EBL) as well as Devices 7 (multi-EML, with EBL) and 8 (multi-EML, no EBL) in
[0193]
[0194]
[0197] As shown in
[0198]
[0200]
[0205] Device architecture with dual EMLs have improved device efficiency using PtNON-based blue phosphorescent OLED with a limited set of potential stable charge-transporting and host materials. One PtNON device (Device 13) have achieved device efficiency over 16% at 1000 cd/m.sup.2. Device 13 demonstrated a very good operational lifetime to 50% of initial luminance (LT.sub.50) of 80 h at the brightness of 6700 cd/m.sup.2. Furthermore, extrapolating these accelerated testing results to practical luminance of 1000 cd/m.sup.2 yields lifetimes of 2030 hr for Device 13.
[0206]
[0210]
[0213] The device efficiency remains similar for PtNON devices with doped TBPe layer, and EL spectra are blue shifted due to efficient energy transfer from PtNON to blue fluorescent emitter TBPe.
[0214]
[0217] Although the device efficiencies drop slightly for Device 19 and Device 20, the operational lifetime further improved with more doped TBPe layers.
[0218]
[0220]
[0222]
[0227]
HATCN(10 nm)NPD(40 nm)/TrisPCz(10 nm)/20% PdN3N:CBP(10 nm)/6% PdN3N:CBP(20 nm)/Balq(10 nm)/BPyTP(40 nm)/LiF/Al
[0228] Further modifications and alternative embodiments of various aspects will be apparent to those skilled in the art in view of this description. Accordingly, this description is to be construed as illustrative only. It is to be understood that the forms shown and described herein are to be taken as examples of embodiments. Elements and materials may be substituted for those illustrated and described herein, parts and processes may be reversed, and certain features may be utilized independently, all as would be apparent to one skilled in the art after having the benefit of this description. Changes may be made in the elements described herein without departing from the spirit and scope as described in the following claims.