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从电化学角度解析非均相热催化甲酸脱氢反应

Disentangling heterogeneous thermocatalytic formic acid dehydrogenation from an electrochemical perspective.

作者信息

Qin Xianxian, Li Jiejie, Jiang Tian-Wen, Ma Xian-Yin, Jiang Kun, Yang Bo, Chen Shengli, Cai Wen-Bin

机构信息

Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, Collaborative Innovation Center of Chemistry for Energy Materials, Department of Chemistry, Fudan University, Shanghai, China.

School of Physical Science and Technology, ShanghaiTech University, Shanghai, China.

出版信息

Nat Commun. 2024 Aug 29;15(1):7509. doi: 10.1038/s41467-024-51926-1.

Abstract

Heterogeneous thermocatalysis of formic acid dehydrogenation by metals in solution is of great importance for chemical storage and production of hydrogen. Insightful understanding of the complicated formic acid dehydrogenation kinetics at the metal-solution interface is challenging and yet essential for the design of efficient heterogeneous formic acid dehydrogenation systems. In this work, formic acid dehydrogenation kinetics is initially studied from a perspective of electrochemistry by decoupling this reaction on Pd catalyst into two short-circuit half reactions, formic acid oxidation reaction and hydrogen evolution reaction and manipulating the electrical double layer impact from the solution side. The pH-dependences of formic acid dehydrogenation kinetics and the associated cation effect are attributed to the induced change of electric double layer structure and potential by means of electrochemical measurements involving kinetic isotope effect, in situ infrared spectroscopy as well as grand canonical quantum mechanics calculations. This work showcases how kinetic puzzles on some important heterogeneous catalytic reactions can be tackled by electrochemical theories and methodologies.

摘要

溶液中金属对甲酸脱氢的多相热催化对于氢的化学储存和生产具有重要意义。深入理解金属-溶液界面处复杂的甲酸脱氢动力学具有挑战性,但对于设计高效的多相甲酸脱氢系统至关重要。在这项工作中,通过将钯催化剂上的甲酸脱氢反应解耦为两个短路半反应,即甲酸氧化反应和析氢反应,并从溶液侧控制双电层影响,最初从电化学角度研究了甲酸脱氢动力学。通过涉及动力学同位素效应、原位红外光谱以及巨正则量子力学计算的电化学测量,甲酸脱氢动力学的pH依赖性及相关阳离子效应归因于双电层结构和电势的诱导变化。这项工作展示了一些重要的多相催化反应的动力学难题如何通过电化学理论和方法来解决。

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