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异质配位铜(I)-蒽醌分子二元体系中的光化学电荷积累:质子耦合电子转移

Photochemical charge accumulation in a heteroleptic copper(i)-anthraquinone molecular dyad proton-coupled electron transfer.

作者信息

Xie Zhu-Lin, Gupta Nikita, Niklas Jens, Poluektov Oleg G, Lynch Vincent M, Glusac Ksenija D, Mulfort Karen L

机构信息

Division of Chemical Sciences and Engineering, Argonne National Laboratory USA

Department of Chemistry, University of Illinois at Chicago USA.

出版信息

Chem Sci. 2023 Sep 1;14(37):10219-10235. doi: 10.1039/d3sc03428c. eCollection 2023 Sep 27.

Abstract

Developing efficient photocatalysts that perform multi electron redox reactions is critical to achieving solar energy conversion. One can reach this goal by developing systems which mimic natural photosynthesis and exploit strategies such as proton-coupled electron transfer (PCET) to achieve photochemical charge accumulation. We report herein a heteroleptic Cu(i)bis(phenanthroline) complex, Cu-AnQ, featuring a fused phenazine-anthraquinone moiety that photochemically accumulates two electrons in the anthraquinone unit PCET. Full spectroscopic and electrochemical analyses allowed us to identify the reduced species and revealed that up to three electrons can be accumulated in the phenazine-anthraquinone ring system under electrochemical conditions. Continuous photolysis of Cu-AnQ in the presence of sacrificial electron donor produced doubly reduced monoprotonated photoproduct confirmed unambiguously by X-ray crystallography. Formation of this photoproduct indicates that a PCET process occurred during illumination and two electrons were accumulated in the system. The role of the heteroleptic Cu(i)bis(phenanthroline) moiety participating in the photochemical charge accumulation as a light absorber was evidenced by comparing the photolysis of Cu-AnQ and the free AnQ ligand with less reductive triethylamine as a sacrificial electron donor, in which photogenerated doubly reduced species was observed with Cu-AnQ, but not with the free ligand. The thermodynamic properties of Cu-AnQ were examined by DFT which mapped the probable reaction pathway for photochemical charge accumulation and the capacity for solar energy stored in the process. This study presents a unique system built on earth-abundant transition metal complex to store electrons, and tune the storage of solar energy by the degree of protonation of the electron acceptor.

摘要

开发能够进行多电子氧化还原反应的高效光催化剂对于实现太阳能转换至关重要。通过开发模仿自然光合作用的系统并采用质子耦合电子转移(PCET)等策略来实现光化学电荷积累,人们可以达到这一目标。我们在此报告一种杂配的Cu(I)双(菲咯啉)配合物Cu-AnQ,其具有稠合的吩嗪-蒽醌部分,该部分在蒽醌单元中通过PCET光化学积累两个电子。全面的光谱和电化学分析使我们能够识别还原态物种,并表明在电化学条件下,吩嗪-蒽醌环系统中最多可积累三个电子。在牺牲电子供体存在下对Cu-AnQ进行连续光解,产生了经X射线晶体学明确证实的双还原单质子化光产物。这种光产物的形成表明在光照过程中发生了PCET过程,并且系统中积累了两个电子。通过比较Cu-AnQ和游离AnQ配体与还原性较弱的三乙胺作为牺牲电子供体的光解情况,证明了杂配的Cu(I)双(菲咯啉)部分作为光吸收剂参与光化学电荷积累的作用,其中在Cu-AnQ光解时观察到了光生双还原物种,而游离配体则没有。通过DFT研究了Cu-AnQ的热力学性质,该研究绘制了光化学电荷积累的可能反应途径以及该过程中存储太阳能的能力。这项研究提出了一个基于地球上储量丰富的过渡金属配合物构建的独特系统,用于存储电子,并通过电子受体的质子化程度来调节太阳能的存储。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0797/10529959/9cb8c0e9c119/d3sc03428c-c1.jpg

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