Magnetic field‐assisted electrocatalysis: Mechanisms and design strategies

电催化剂 磁场 洛伦兹力 催化作用 磁流体驱动 领域(数学) 纳米技术 材料科学 磁流体力学 物理 化学 数学 电极 物理化学 纯数学 电化学 生物化学 量子力学
作者
Yongwen Sun,Hong Lv,Han Yao,Yuanfeng Gao,Cunman Zhang
出处
期刊:Carbon energy [Wiley]
标识
DOI:10.1002/cey2.575
摘要

Abstract Electrocatalysis has received a great deal of interest in recent decades as a possible energy‐conversion technology involving a variety of chemical processes. External magnetic field application is a powerful method for improving electrocatalytic performance that is customizable and compatible with existing electrocatalytic devices. In addition, magnetic fields can assist in catalyst synthesis and act on the catalytic reaction process. This paper systematically reviews the most recent developments in magnetic field‐assisted electrocatalytic enhancement technology. The enhancement of electrocatalysis by a magnetic field is mainly represented in the three features listed below: The spin selectivity effect improves the activity of the catalyst in a magnetic field; furthermore, magnetic fields can improve mass transport and electron transport in catalytic processes (due to Lorentz forces, Kelvin forces, magnetohydrodynamic [MHD], and micro‐MHD); the magnetothermal effect may raise the reaction temperature and boost electrocatalytic activity. This review focuses on the rational design of catalytic systems incorporating the interaction between catalysts and magnetic fields, aiming to produce enhanced catalytic effects. The recommendations for further utilization of strategies for electrocatalysis and broader energy technologies for magnetic fields, as well as potential challenges for future research, are also discussed.
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