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全色吸收体中的能量和电子转移级联

Cascades of energy and electron transfer in a panchromatic absorber.

作者信息

Joseph Jan, Bauroth Stefan, Charisiadis Asterios, Charalambidis Georgios, Coutsolelos Athanassios G, Guldi Dirk M

机构信息

Department of Chemistry and Pharmacy and Interdisciplinary Center for Molecular Materials, Friedrich-Alexander-Universität, 91058 Erlangen, Germany.

Department of Chemistry, University of Crete, Laboratory of Bioinorganic Chemistry, Voutes Campus, P.O. Box 2208, 71003 Heraklion, Crete, Greece.

出版信息

Nanoscale. 2022 Jul 7;14(26):9304-9312. doi: 10.1039/d2nr02404g.

Abstract

The investigation of molecular model systems is fundamental towards a deeper understanding of key photochemical steps in natural photosynthesis. Herein, we report an entirely non-covalent triad consisting of boron dipyrromethene (BDP), porphyrin (ZnP), and fullerene (C60). Non-covalent binding motifs such as an amidinium-carboxylate salt bridge as well as axial pyridyl-metal coordination offer substantial electronic coupling and establish efficient pathways for photoactivated energy and electron transfer processes along a well-tuned gradient. Experimental findings from steady-state and time-resolved spectroscopic assays, as well as (spectro-)electrochemical measurements corroborate the formation of BDP|ZnP|C60 in solution, on one hand, and significant communication in the excited states, on the other hand. BDP acts as an energy harvesting antenna towards ZnP, which eventually undergoes charge separation with C60 by electron transfer from ZnP to C60. Notably, full spectral deconvolution of the transient species was achieved, supporting the successful self-assembly as well as giving a clear view onto the occurring photophysical processes and their spectral footprints upon photoexcitation.

摘要

对分子模型系统的研究是深入理解自然光合作用中关键光化学步骤的基础。在此,我们报道了一种完全由硼二吡咯亚甲基(BDP)、卟啉(ZnP)和富勒烯(C60)组成的非共价三联体。诸如脒基 - 羧酸盐盐桥以及轴向吡啶基 - 金属配位等非共价结合基序提供了显著的电子耦合,并为沿良好调节梯度的光活化能量和电子转移过程建立了有效途径。稳态和时间分辨光谱分析以及(光谱 - )电化学测量的实验结果一方面证实了溶液中BDP|ZnP|C60的形成,另一方面证实了激发态下的显著通信。BDP作为朝向ZnP的能量收集天线,最终通过从ZnP到C60的电子转移与C60发生电荷分离。值得注意的是,实现了瞬态物种的全光谱去卷积,这支持了成功的自组装,并清晰地展示了光激发时发生的光物理过程及其光谱特征。

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