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附着在高表面积多孔硅上的分子催化剂实现光电化学将CO还原为CO

Photoelectrochemical CO Reduction to CO Enabled by a Molecular Catalyst Attached to High-Surface-Area Porous Silicon.

作者信息

Jia Xiaofan, Stewart-Jones Eleanor, Alvarez-Hernandez Jose L, Bein Gabriella P, Dempsey Jillian L, Donley Carrie L, Hazari Nilay, Houck Madison N, Li Min, Mayer James M, Nedzbala Hannah S, Powers Rebecca E

机构信息

The Department of Chemistry, Yale University, P.O. Box 208107, New Haven, Connecticut 06520, United States.

Department of Chemistry, University of North Carolina at Chapel Hill, Chapel Hill, North Carolina 27599, United States.

出版信息

J Am Chem Soc. 2024 Mar 27;146(12):7998-8004. doi: 10.1021/jacs.3c10837. Epub 2024 Mar 15.

Abstract

A high-surface-area -type porous Si photocathode containing a covalently immobilized molecular Re catalyst is highly selective for the photoelectrochemical conversion of CO to CO. It gives Faradaic efficiencies of up to 90% for CO at potentials of -1.7 V (versus ferrocenium/ferrocene) under 1 sun illumination in an acetonitrile solution containing phenol. The photovoltage is approximately 300 mV based on comparisons with similar -type porous Si cathodes in the dark. Using an estimate of the equilibrium potential for CO reduction to CO under optimized reaction conditions, photoelectrolysis was performed at a small overpotential, and the onset of electrocatalysis in cyclic voltammograms occurred at a modest underpotential. The porous Si photoelectrode is more stable and selective for CO production than the photoelectrode generated by attaching the same Re catalyst to a planar Si wafer. Further, facile characterization of the porous Si-based photoelectrodes using transmission mode FTIR spectroscopy leads to highly reproducible catalytic performance.

摘要

一种含有共价固定化分子铼催化剂的高表面积型多孔硅光阴极对CO光电化学转化为CO具有高度选择性。在含有苯酚的乙腈溶液中,在1个太阳光照下,在-1.7 V(相对于二茂铁鎓/二茂铁)的电位下,它对CO的法拉第效率高达90%。基于与黑暗中类似类型多孔硅阴极的比较,光电压约为300 mV。利用优化反应条件下CO还原为CO的平衡电位估计值,在小过电位下进行了光电电解,循环伏安图中电催化的起始发生在适度的欠电位下。与将相同铼催化剂附着到平面硅片上生成的光电极相比,多孔硅光电极对CO生成更稳定且更具选择性。此外,使用透射模式傅里叶变换红外光谱对基于多孔硅的光电极进行简便表征可得到高度可重复的催化性能。

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