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1.
用经典的方法合成了面式-三(2-(4-三氟甲基苯基)吡啶)合铱配合物(fac-Ir(tfmppy)3), 并得到了其晶体结构。在CH2Cl2溶液中Ir(tfmppy)3的发射光谱显示出了峰值位于525 nm的π→π*跃迁吸收以及金属到配体电荷转移(MLCT)吸收, 色坐标(CIE)为(0.31, 0.62), 量子效率计算为4.59%(以Ru(bpy)3]Cl2为参照)。以Ir(tfmppy)3为发光中心, 制备并研究了有机电致发光器件:ITO/TAPC (60 nm)/Ir(tfmppy)3 (x%):mCP (30 nm)/TPBi (60 nm)/LiF (1 nm)/Al (100 nm)。4%掺杂浓度的器件在4 197 cd·m-2的亮度下显示的最大电流效率为33.95 cd·A-1, 在12.7 V时的最大亮度为43 612 cd·m-2, 色坐标(CIE)为(0.31, 0.61)。利用瞬态电致发光法(transient electroluminescence (EL))、在1 300 (V·cm-1)1/2的电场强度下Ir(tfmppy)3配合物的电子迁移率测定为4.24×10-6 cm2·(V·s)-1。非常接近于常用的电子传输材料八羟基喹啉铝(Alq3)的电子迁移率。  相似文献   

2.
以二(二苯基磷酰)胺(Htpip)作为辅助配体,与主配体2-(2,4-二氟苯基)异喹啉和2-(4-三氟甲基苯基)异喹啉合成了红光铱磷光配合物Ir(dfpiq)2tpip和Ir(tfmpiq)2tpip并得到了晶体结构。在CH2Cl2中发射光谱主要是MLCT发射,峰位置分别为622和600 nm,量子效率分别为15%和17%,而HOMO/LUMO能级分别是-4.80/-2.58和-4.73/-2.57 eV。在1150~1300(V·cm-1)1/2电场范围,Ir(dfpiq)2tpip的电子迁移率为6.61~8.49×10-6cm2·V-1·s-1,Ir(tfmpiq)2tpip的电子迁移率为6.08~6.61×10-6cm2·V-1·s-1。ITO/TAPC(60 nm)/Ir-complex(15wt%):CBP(50 nm)/TPBi(60 nm)/LiF(1 nm)/Al(100 nm)中基于Ir(dfpiq)2tpip的器件最大安培效率和功率效率分别为4.71 cd·A-1和1.82 lm·W-1,12.0 V时达到的最大亮度为18 195 cd·m-2。基于Ir(tfmpiq)2tpip的器件最大安培效率和功率效率分别为3.47 cd·A-1和1.51 lm·W-1,12.4 V时达到的最大亮度为14 676 cd·m-2。  相似文献   

3.
混合蓝色和绿色发射的高亮度白色有机电致发光器件   总被引:1,自引:0,他引:1  
使用星形六苯芴类新材料1,2,3,4,5,6-hexakis(9,9-diethyl-9H-fluoren-2-y1)benzene(HKEthFLYPh)分别制备了三种不同结构的有机电致发光器件.在结构为indium-tin oxide(ITO)/NPB(40nm)/HKEthFLYPh(10nm)/Alq3(50nm)/Mg:Ag(200nm)的器件中,获得了两个电致发光谱峰分别位于435和530nm处的明亮白光.HKEthFLYPh足能量传输层;N,N'-bis-(1-naphthyl)-N,N'-diphenyl-(1,1'-biphenyl)-4,4'-diamine(NPB)是空穴传输层和蓝色发光层;tris(8-hydroxyquinoline)aluminum(Alq3)是电子传输层和绿色发光层.结果表明,当驱动电压为15V时,器件的最大亮度达到8523cd·m-2;在5.5V时,器件达到最大流明效率为1.01m·W-1.在电压为9V时,CIE色坐标为(0.29,0.34).此外,通过改变HKEthFLYPh层的厚度,发现蓝色发射的相对强度随着HKEthFLYPh层厚度的增加而增强.  相似文献   

4.
通过研究新型荧光染料N-对甲氧苯基咔唑-2-乙烯基-8-羟基喹啉锌(MoBCzHQZn)的电致发光(EL)特性, 发现MoBCzHQZn具有较强的发光特性和空穴传输特性, 利用此特性制备了非掺杂型的有机电致白光器件和掺杂型的有机电致黄光器件. 白光器件的结构为ITO/2T-NATA(20 nm)/MoBCzHQZn(25 nm)/NPBX(13 nm)/BCP(8nm)/Alq3(34 nm)/LiF(0.5 nm)/Al, 器件在15 V电压下实现了白光发射, 色坐标为(0.3719, 0.3275), 最大发光亮度为3414 cd·m-2, 在14 V 电压下的最大发光效率为1.69 cd·A-1、黄光器件的结构为ITO/2T-NATA(20 nm)/CBP:6%Ir(ppy)3:10%MoBCzHQZn(25 nm)/TPBi:6%Ir(ppy)3(47 nm)/LiF(0.5 nm)/Al, 器件在15 V电压下实现了黄绿光发射, 色坐标为(0.3590, 0.5787), 最大发光亮度为11073 cd·m-2, 在9 V电压下的最大发光效率为2.51 cd·A-1.  相似文献   

5.
研究了基于互补色的高效聚合物白光器件,双色材料包括蓝绿光材料双(4,6-二氟苯基吡啶-N,C2)吡啶甲酰合铱(Firpic)和黄光材料三[3-(2,6-二甲基苯氧基)-6-(2-噻吩基)-哒嗪]铱(Fs-1),器件结构为ITO/PEDOT(40 nm)/PVK:OXD-7:Firpic:Fs-1(80 nm)/Ba(4 nm)/Al(120 nm).当发光层材料PVK∶OXD-7∶Firpic∶Fs-1质量比为63∶27∶10∶0.25时,用溶液加工方法得到高效白光器件,此时CIE色坐标为(0.30,0.39),最大电流效率为10.8 cd.A-1,亮度可达到4200 cd.m-2.在此基础上,引入水溶性电子注入材料聚[9,9-二(3′-N,N-二甲基胺基丙基-2,7-芴-2,7-交-(9,9-二辛基芴)](PFN)修饰阴极界面,使载流子注入和传输更平衡,当阴极为PFN(20 nm)/Al(120 nm)时,电流效率获得显著改善,达到13.1 cd.A-1,此时电流密度为4.9 mA.cm-2,亮度可达到6096 cd.m-2,白光器件的色坐标为(0.33,0.39),同时发光光谱稳定.另外通过电致发光(EL)、光致发光(PL)光谱及能级结构图分析了载流子俘获和能量转移在发光中的作用.  相似文献   

6.
以1-(4-三氟甲基苯基)异喹啉(tfmpiq)为主配体,二(二(4-三氟甲基苯基)膦酰)胺(tfmtpip)为辅助配体,成功合成了Ir髥配合物Ir(tfmpiq)2(tfmtpip),并得到了配合物的晶体结构。配合物Ir(tfmpiq)2(tfmtpip)的分解温度为373℃,具有良好的热稳定性。Ir(tfmpiq)2(tfmtpip)的发射光谱主要是MLCT发射,峰位置为613 nm,量子效率为3.7%,HOMO和LUMO轨道能级分别为-5.62和-3.54 e V。基于Ir(tfmpiq)2(tfmtpip)的器件ITO/TAPC(40 nm)/Ir(tfmpiq)2(tfmtpip)(x%)∶mCP(20 nm)/TmPyPB(40 nm)/LiF(1 nm)/Al(100 nm),当掺杂浓度为4%(w/w)时,器件达到最大功率效率和电流效率分别为5.73 lm·W-1和7.13 cd·A-1,而且器件在12.8 V的驱动电压下达到亮度10 542 cd·m-2。  相似文献   

7.
以2',6'-二氟-2,3'-联吡啶(Hdfpypy)为主配体,乙酰丙酮为辅助配体,合成了二-[2',6'-二氟-2,3'-联吡啶-N,C4'][2,4-戊二酮-O,O]铱(Ⅲ)配合物((dfpypy)2Ir(acac))。在THF溶液中,该配合物溶液最大光致发光光谱为465 nm(半峰宽为53 nm),同时伴有490 nm的肩峰,与面式-Ir(dfpypy)3在438和463 nm两个强度相近的发光光谱相比,发生了红移。配合物在脱气四氢呋喃溶液中的PL量子效率为0.41。将(dfpypy)2Ir(acac)以不同的浓度掺杂在主体材料聚乙烯基咔唑(PVK)中,制备了器件结构为:ITO/PEDOT∶PSS(聚二氧乙基噻吩∶聚对苯乙烯磺酸)/PVK∶(dfpypy)2Ir(acac)(100∶x)(70 nm)/Ba/Al的蓝色聚合物发光器件(x代表掺杂量)。在驱动电压为15.4 V时,2%掺杂器件的最大发光亮度为1400 cd/m2。当电流密度为0.23×10-3A/cm2时,2%掺杂器件最大亮度效率(ηc)为1.6 cd/A。器件的色坐标(CIE)值为(0.15,0.27)。  相似文献   

8.
利用两种Cs基衍生物碳酸铯(Cs2CO3)和醋酸铯(CH3COOCs)作为n型掺杂剂掺入到一种新型的电子传输材料2,9-二(2-萘基)-4,7-二苯基-1,10-菲啰啉(NBPhen)中来提高有机发光二极管(OLEDs)的效率.实验结果表明:器件的驱动电压明显降低,并且优化后得到的Cs基n型掺杂器件(ITO/β-NPB/CBP:5%(w)N-BDAVBi/NBPhen/NBPhen:Cs2CO3(or CH3COOCs)/Al)呈现出较好的电致发光性能,在14 V时电流密度分别为551.80和527.88 mA·cm-2,对应的亮度分别达到39750和39820 cd·m-2,电流效率在亮度为10000 cd·m-2时分别为14.60 cd·A-1(Cs2CO3掺杂)和14.40 cd·A-1(CH3COOCs掺杂),这些参数明显优于传统器件的发光性能(ITO/β-NPB/CBP:5%(w)N-BDAVBi/NBPhen/Cs2CO3/Al,其在14 V时电流密度为312.39 mA·cm-2,对应的亮度为25190 cd·m-2;电流效率在亮度为10000 cd·m-2时为9.45 cd·A-1.此外,基于有机半导体掺杂原理和器件的能级结构对n型掺杂器件效率提高的原因进行了分析.  相似文献   

9.
制备了一系列基于配合物Sm(DBM)3phen的电致发光器件. 研究了其光致发光(PL)和电致发光(EL)性质, 实验结果表明, Sm(DBM)3phen具有良好的电子注入和传输性能以及电致发光性能. 器件ITO/TPD(50 nm)/Sm(DBM)3phen(50 nm)/Alq3(30 nm)/LiF(1.0 nm)/Al的最大亮度和最大效率分别为150 cd/m2和0.72 cd/A, 器件表现为纯Sm3+离子的发光.  相似文献   

10.
合成了2种新的噌啉类铱配合物(dpci)_2Ir(paz)和(dpci)_2Ir(taz)(dpci=3,4-二苯基噌啉,paz H=5-(2′-吡啶基)-3-三氟甲基-吡唑,taz H=5-(2′-吡啶基)-3-三氟甲基-1,2,4-三唑),通过核磁共振氢谱和氟谱及高分辨质谱对其结构进行了确定,同时对其光电性能进行了表征。结果表明在聚甲基丙烯酸甲酯(1%,w/w)中(dpci)_2Ir(paz)和(dpci)_2Ir(taz)的发光波长分别为616和612 nm,相对参比铱配合物(dpci)_2Ir(pic)的波长(625 nm)有了较大蓝移,发光量子效率也由16.1%提高到了51.9%和32.5%。改进辅助配体后,材料的稳定性明显提高,使其能用蒸镀法制备有机电致发光器件。基于(dpci)_2Ir(paz)的器件发光为纯红光,CIE色坐标为(0.66,0.34),最大亮度为2 054 cd·m~(-2),最大电流效率为8.5 cd·A~(-1)。基于(dpci)_2Ir(taz)的器件最大亮度为2 931 cd·m~(-2),最大电流效率为14.5 cd·A~(-1)。  相似文献   

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A low barrier in the reaction pathway between the double Rydberg isomer of OH(3) (-) and a hydride-water complex indicates that the former species is more difficult to isolate and characterize through anion photoelectron spectroscopy than the well known double Rydberg anion (DRA), tetrahedral NH(4) (-). Electron propagator calculations of vertical electron detachment energies (VEDEs) and isosurface plots of the electron localization function disclose that the transition state's electronic structure more closely resembles that of the DRA than that of the hydride-water complex. Possible stabilization of the OH(3) (-) DRA through hydrogen bonding or ion-dipole interactions is examined through calculations on O(2)H(5) (-) species. Three O(2)H(5) (-) minima with H(-)(H(2)O)(2), hydrogen-bridged, and DRA-molecule structures resemble previously discovered N(2)H(7) (-) species and have well separated VEDEs that may be observable in anion photoelectron spectra.  相似文献   

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Summary Dichlorobis(methylsalicylato)titanium(IV) reacts with potassium or amine salts of dialkyl or diaryl dithiocarbamates in 11 and 12 molar ratios in anhydrous benzene (room temperature) or in boiling CH2Cl2 to yield mixed ligand complexes: (AcOC6H4O)2 Ti(S2CNR2)Cl (1) and (AcOC6H4O)2 Ti(S2CNR2)2 (2), R=Et, n-Pr, n-Bu, cyclo-C4H8 and cyclo-C5H10. These compounds are moisture sensitive and highly soluble in polar solvents. Molecular weight measurement in conjunction with i.r.,1H and13C n.m.r. spectral studies suggest coordination number 7 and 8 around titanium(IV) in (1) and (2) respectively.  相似文献   

19.
Huang FQ  Ibers JA 《Inorganic chemistry》2001,40(10):2346-2351
The alkali metal/group 4 metal/polychalcogenides Cs(4)Ti(3)Se(13), Rb(4)Ti(3)S(14), Cs(4)Ti(3)S(14), Rb(4)Hf(3)S(14), Rb(4)Zr(3)Se(14), Cs(4)Zr(3)Se(14), and Cs(4)Hf(3)Se(14) have been synthesized by means of the reactive flux method at 823 or 873 K. Cs(4)Ti(3)Se(13) crystallizes in a new structure type in space group C(2)(2)-P2(1) with eight formula units in a monoclinic cell at T = 153 K of dimensions a = 10.2524(6) A, b = 32.468(2) A, c = 14.6747(8) A, beta = 100.008(1) degrees. Cs(4)Ti(3)Se(13) is composed of four independent one-dimensional [Ti(3)Se(13)(4-)] chains separated by Cs(+) cations. These chains adopt hexagonal closest packing along the [100] direction. The [Ti(3)Se(13)(4-)] chains are built from the face- and edge-sharing of pentagonal pyramids and pentagonal bipyramids. Formal oxidation states cannot be assigned in Cs(4)Ti(3)Se(13). The compounds Rb(4)Ti(3)S(14), Cs(4)Ti(3)S(14), Rb(4)Hf(3)S(14), Rb(4)Zr(3)Se(14), Cs(4)Zr(3)Se(14), and Cs(4)Hf(3)Se(14) crystallize in the K(4)Ti(3)S(14) structure type with four formula units in space group C(2)(h)()(6)-C2/c of the monoclinic system at T = 153 K in cells of dimensions a = 21.085(1) A, b = 8.1169(5) A, c = 13.1992(8) A, beta = 112.835(1) degrees for Rb(4)Ti(3)S(14);a = 21.329(3) A, b = 8.415(1) A, c = 13.678(2) A, beta = 113.801(2) degrees for Cs(4)Ti(3)S(14); a = 21.643(2) A, b = 8.1848(8) A, c = 13.331(1) A, beta = 111.762(2) degrees for Rb(4)Hf(3)S(14); a = 22.605(7) A, b = 8.552(3) A, c = 13.880(4) A, beta = 110.919(9) degrees for Rb(4)Zr(3)Se(14); a = 22.826(5) A, b = 8.841(2) A, c = 14.278(3) A, beta = 111.456(4) degrees for Cs(4)Zr(3)Se(14); and a = 22.758(5) A, b = 8.844(2) A, c = 14.276(3) A, beta = 111.88(3) degrees for Cs(4)Hf(3)Se(14). These A(4)M(3)Q(14) compounds (A = alkali metal; M = group 4 metal; Q = chalcogen) contain hexagonally closest-packed [M(3)Q(14)(4-)] chains that run in the [101] direction and are separated by A(+) cations. Each [M(3)Q(14)(4-)] chain is built from a [M(3)Q(14)] unit that consists of two MQ(7) pentagonal bipyramids or one distorted MQ(8) bicapped octahedron bonded together by edge- or face-sharing. Each [M(3)Q(14)] unit contains six Q(2)(2-) dimers, with Q-Q distances in the normal single-bond range 2.0616(9)-2.095(2) A for S-S and 2.367(1)-2.391(2) A for Se-Se. The A(4)M(3)Q(14) compounds can be formulated as (A(+))(4)(M(4+))(3)(Q(2)(2-))(6)(Q(2-))(2).  相似文献   

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Pure, highly explosive CF(3)C(O)OOC(O)CF(3) is prepared for the first time by low-temperature reaction between CF(3)C(O)Cl and Na(2)O(2). At room temperature CF(3)C(O)OOC(O)CF(3) is stable for days in the liquid or gaseous state. The melting point is -37.5 degrees C, and the boiling point is extrapolated to 44 degrees C from the vapor pressure curve log p = -1875/T + 8.92 (p/mbar, T/K). Above room temperature the first-order unimolecular decay into C(2)F(6) + CO(2) occurs with an activation energy of 129 kJ mol(-1). CF(3)C(O)OOC(O)CF(3) is a clean source for CF(3) radicals as demonstrated by matrix-isolation experiments. The pure compound is characterized by NMR, vibrational, and UV spectroscopy. The geometric structure is determined by gas electron diffraction and quantum chemical calculations (HF, B3PW91, B3LYP, and MP2 with 6-31G basis sets). The molecule possesses syn-syn conformation (both C=O bonds synperiplanar to the O-O bond) with O-O = 1.426(10) A and dihedral angle phi(C-O-O-C) = 86.5(32) degrees. The density functional calculations reproduce the experimental structure very well.  相似文献   

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