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具有3,4,5-三苯基-4-1,2,4-三唑型环金属化配体的阳离子铱配合物:合成、表征及其在发光电化学电池中的应用

Cationic Iridium Complexes with 3,4,5-Triphenyl-4-1,2,4-Triazole Type Cyclometalating Ligands: Synthesis, Characterizations, and Their Use in Light-Emitting Electrochemical Cells.

作者信息

Meng Xianwen, Chen Mengzhen, Bai Rubing, He Lei

机构信息

College of Chemistry, Key Laboratory of Pesticide and Chemical Biology of Ministry of Education, Hubei International Scientific and Technological Cooperation Base of Pesticide and Green Synthesis, Central China Normal University, Wuhan 430079, People's Republic of China.

出版信息

Inorg Chem. 2020 Jul 20;59(14):9605-9617. doi: 10.1021/acs.inorgchem.0c00645. Epub 2020 Jul 9.

Abstract

Cationic iridium complexes that show blue-shifted emission and high phosphorescent efficiency have been pursued for their optoelectronic applications. Five cationic iridium complexes with 3,4,5-triphenyl-4-1,2,4-triazole (tPhTAZ) type cyclometalating ligands (C^N) and 2,2'-bipyridine or 2-(pyridin-2-yl)-1-benzo[d]imidazole type ancillary ligands (N^N) have been designed and synthesized. Their structures have been confirmed by X-ray crystallography, and their photophysical and electrochemical properties have been comprehensively characterized. In solution and thin films, the complexes afford efficient yellow to blue-green emission. The highest occupied molecular orbitals (HOMOs) of these complexes are delocalized over the C^N ligand and the iridium ion, and compared with the conventional 2-phenylpyridine (Hppy) ligand, the tPhTAZ ligand largely shifts the emission of the complex toward blue by over 40 nm through stabilizing the HOMO. Moreover, the peripheral phenyl rings in tPhTAZ provide steric hindrance to the complexes, which suppresses phosphorescence concentration-quenching of the complexes, leading to high luminescent efficiencies in neat films. Theoretical calculations have shown that the emission of the complexes originates from either the charge-transfer state (Ir/C^N → N^N) or the C^N/N^N-centered π-π* state, depending on the local surrounding of the complex. The complexes exhibit good electrochemical stability with reversible oxidation and reduction processes in solution. Solid-state light emitting electrochemical cells (LECs) using the complexes afford yellow to blue-green emission, with peak current efficiencies of up to 34.7 cd A and maximum brightness of up to 256 cd m at 3.0 V, which are among the highest for LECs based on cationic iridium complexes reported so far, indicating the great potential for the use of tPhTAZ-type C^N ligands in construction of cationic iridium complexes for LEC applications.

摘要

由于其光电应用,人们一直在研究具有蓝移发射和高磷光效率的阳离子铱配合物。设计并合成了五种具有3,4,5-三苯基-4-1,2,4-三唑(tPhTAZ)型环金属化配体(C^N)和2,2'-联吡啶或2-(吡啶-2-基)-1-苯并[d]咪唑型辅助配体(N^N)的阳离子铱配合物。通过X射线晶体学确定了它们的结构,并对其光物理和电化学性质进行了全面表征。在溶液和薄膜中,这些配合物发出高效的黄色至蓝绿色发射光。这些配合物的最高占据分子轨道(HOMOs)在C^N配体和铱离子上离域,与传统的2-苯基吡啶(Hppy)配体相比,tPhTAZ配体通过稳定HOMO使配合物的发射向蓝色方向大幅移动超过40 nm。此外,tPhTAZ中的外围苯环为配合物提供了空间位阻,抑制了配合物的磷光浓度猝灭,从而在纯薄膜中实现了高发光效率。理论计算表明,配合物的发射源于电荷转移态(Ir/C^N → N^N)或C^N/N^N中心的π-π*态,这取决于配合物的局部环境。这些配合物在溶液中表现出良好的电化学稳定性,具有可逆的氧化和还原过程。使用这些配合物的固态发光电化学电池(LECs)发出黄色至蓝绿色发射光,在3.0 V时峰值电流效率高达34.7 cd A,最大亮度高达256 cd m,这是迄今为止报道的基于阳离子铱配合物的LECs中最高的之一,表明tPhTAZ型C^N配体在构建用于LEC应用的阳离子铱配合物方面具有巨大潜力。

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