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改变方向:配体电子学对铜(I)二亚胺配合物中光诱导电荷转移的方向性和动力学的影响。

Changing Directions: Influence of Ligand Electronics on the Directionality and Kinetics of Photoinduced Charge Transfer in Cu(I)Diimine Complexes.

作者信息

Wang Lei, Xie Zhu-Lin, Phelan Brian T, Lynch Vincent M, Chen Lin X, Mulfort Karen L

机构信息

Division of Chemical Sciences and Engineering, Argonne National Laboratory, Lemont, Illinois 60439, United States.

School of Materials and Chemistry, University of Shanghai for Science and Technology, Shanghai 200093, China.

出版信息

Inorg Chem. 2023 Sep 4;62(35):14368-14376. doi: 10.1021/acs.inorgchem.3c02043. Epub 2023 Aug 24.

Abstract

A key challenge to the effective utilization of solar energy is to promote efficient photoinduced charge transfer, specifically avoiding unproductive, circuitous electron-transfer pathways and optimizing the kinetics of charge separation and recombination. We hypothesize that one way to address this challenge is to develop a fundamental understanding of how to initiate and control directional photoinduced charge transfer, particularly for earth-abundant first-row transition-metal coordination complexes, which typically suffer from relatively short excited-state lifetimes. Here, we report a series of functionalized heteroleptic copper(I)bis(phenanthroline) complexes, which have allowed us to investigate the directionality of intramolecular photoinduced metal-to-ligand charge transfer (MLCT) as a function of the substituent Hammett parameter. Ultrafast transient absorption suggests a complicated interplay of MLCT localization and solvent interaction with the Cu(II) center of the MLCT state. This work provides a set of design principles for directional charge transfer in earth-abundant complexes and can be used to efficiently design pathways for connecting the molecular modules to catalysts or electrodes and integration into systems for light-driven catalysis.

摘要

有效利用太阳能的一个关键挑战是促进高效的光致电荷转移,特别是避免无效率的、迂回的电子转移途径,并优化电荷分离和复合的动力学。我们假设应对这一挑战的一种方法是深入了解如何引发和控制定向光致电荷转移,特别是对于地球上储量丰富的第一排过渡金属配位络合物,这类络合物通常具有相对较短的激发态寿命。在此,我们报告了一系列功能化的异质双铜(I)双(菲咯啉)络合物,这些络合物使我们能够研究分子内光致金属到配体电荷转移(MLCT)的方向性与取代基哈米特参数的关系。超快瞬态吸收表明,MLCT定位与溶剂与MLCT态的Cu(II)中心之间存在复杂的相互作用。这项工作为地球上储量丰富的络合物中的定向电荷转移提供了一套设计原则,可用于高效设计将分子模块连接到催化剂或电极的途径,并集成到光驱动催化系统中。

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