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稳定配位聚合物中的铜位点以实现高效电化学 C-C 偶联。

Stabilizing copper sites in coordination polymers toward efficient electrochemical C-C coupling.

机构信息

Hefei National Research Center for Physical Sciences at the Microscale, CAS Key Laboratory of Strongly-Coupled Quantum Matter Physics, Key Laboratory of Surface and Interface Chemistry and Energy Catalysis of Anhui Higher Education Institutes, Department of Chemical Physics, University of Science and Technology of China, Hefei, Anhui, 230026, P. R. China.

School of Chemical and Biomolecular Engineering and The University of Sydney Nano Institute, The University of Sydney, Sydney, NSW, 2006, Australia.

出版信息

Nat Commun. 2023 Jan 30;14(1):474. doi: 10.1038/s41467-023-35993-4.

Abstract

Electroreduction of carbon dioxide with renewable electricity holds promise for achieving net-zero carbon emissions. Single-site catalysts have been reported to catalyze carbon-carbon (C-C) coupling-the indispensable step for more valuable multi-carbon (C) products-but were proven to be transformed in situ to metallic agglomerations under working conditions. Here, we report a stable single-site copper coordination polymer (Cu(OH)BTA) with periodic neighboring coppers and it exhibits 1.5 times increase of CH selectivity compared to its metallic counterpart at 500 mA cm. In-situ/operando X-ray absorption, Raman, and infrared spectroscopies reveal that the catalyst remains structurally stable and does not undergo a dynamic transformation during reaction. Electrochemical and kinetic isotope effect analyses together with computational calculations show that neighboring Cu in the polymer provides suitably-distanced dual sites that enable the energetically favorable formation of an *OCCHO intermediate post a rate-determining step of CO hydrogenation. Accommodation of this intermediate imposes little changes of conformational energy to the catalyst structure during the C-C coupling. We stably operate full-device CO electrolysis at an industry-relevant current of one ampere for 67 h in a membrane electrode assembly. The coordination polymers provide a perspective on designing molecularly stable, single-site catalysts for electrochemical CO conversion.

摘要

利用可再生电力还原二氧化碳有望实现净零碳排放。单原子催化剂已被报道可催化碳-碳(C-C)偶联——这是生成更有价值的多碳(C)产物的必要步骤——但在工作条件下被证明会原位转化为金属团聚物。在这里,我们报告了一种稳定的单原子铜配位聚合物(Cu(OH)BTA),其具有周期性相邻铜原子,与金属对应物相比,在 500 mA cm 时 CH 的选择性提高了 1.5 倍。原位/操作态 X 射线吸收、拉曼和红外光谱表明,催化剂在反应过程中保持结构稳定,不会发生动态转化。电化学和动力学同位素效应分析以及计算计算表明,聚合物中的相邻 Cu 提供了适当间隔的双位点,使*OCCHO 中间体在 CO 加氢的速率决定步骤后能够有利地形成。这种中间体的容纳在 C-C 偶联过程中对催化剂结构的构象能变化很小。我们在膜电极组件中以一安培的工业相关电流稳定地运行全器件 CO 电解 67 小时。配位聚合物为设计用于电化学 CO 转化的分子稳定、单原子催化剂提供了一个视角。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c9bc/9884666/ef7f51192a5a/41467_2023_35993_Fig1_HTML.jpg

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