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将第三施主封装到D-A杂化异质结构中以形成三组分电荷转移复合物,从而增强电学性能。

Encapsulating third donors into D-A hybrid heterostructures to form three-component charge-transfer complexes for enhanced electrical properties.

作者信息

Li Meng-Hua, You Ming-Hua, Lin Mei-Jin

机构信息

Key Laboratory of Molecule Synthesis and Function Discovery (Fujian Province University), College of Chemistry, Fuzhou University, Fuzhou, 350108, China.

College of Materials Science and Engineering, Fujian University of Technology, 350118, China.

出版信息

Dalton Trans. 2021 Oct 12;50(39):13961-13967. doi: 10.1039/d1dt02230j.

Abstract

D-A hybrid heterostructures are an emerging class of crystalline hybrid materials composed of semiconductive inorganic donors and organic acceptors. However, due to the steric effects of the inorganic coordination sites, it is difficult for the large organic molecules to form compact packing at the molecular level, resulting in the poor efficiency of photoinduced charge transfers. To achieve an effective carrier separation and transfer, herein we incorporated third donors into a copper(I) halide/thiazolo[5,4-] thiazole D-A heterostructure to construct three novel three-component complexes (Me-PyTTz)CuI·(I) (1), (Me-PyTTz)CuI·(pyrene) (2) and (Me-PyTTz)CuI·(perylene) (3) (PyTTz = 2,5-bis(4-pyridyl) thiazolo[5,4-] thiazole), respectively. Due to the spatial distances as well as the orbital energies between the copper(I) halide and thiazolo[5,4-] thiazole units bridged by third donors, they are excellent three-component charge-transfer complexes (CTCs) with enhanced electrical properties.

摘要

D-A杂化异质结构是一类新兴的晶体杂化材料,由半导体无机供体和有机受体组成。然而,由于无机配位位点的空间效应,大的有机分子很难在分子水平上形成紧密堆积,导致光致电荷转移效率低下。为了实现有效的载流子分离和转移,我们在此将第三种供体引入卤化亚铜/噻唑并[5,4-b]噻唑D-A异质结构中,构建了三种新型的三组分配合物(Me-PyTTz)CuI·(I)(1)、(Me-PyTTz)CuI·(芘)(2)和(Me-PyTTz)CuI·(苝)(3)(PyTTz = 2,5-双(4-吡啶基)噻唑并[5,4-b]噻唑)。由于被第三种供体桥连的卤化亚铜和噻唑并[5,4-b]噻唑单元之间的空间距离以及轨道能量,它们是具有增强电学性质的优异三组分电荷转移配合物(CTC)。

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