催化作用
热的
传热
化学物理
微尺度化学
纳米技术
动能
动力学蒙特卡罗方法
材料科学
化学
桥接(联网)
选择性
化学过程
化学反应工程
能量转换
认知重构
多相催化
化学能
导电体
再分配(选举)
热能
化学动力学
热力学
亚稳态
动力学
强化传热
作者
Jinghao Li,Qi Wang,Jiaqi Li,Zhengpeng Qin,Shuaiyu Chen,Gaowu Qin,Song Li
出处
期刊:ACS Catalysis
[American Chemical Society]
日期:2026-07-27
卷期号:16 (15): 14006-14028
标识
DOI:10.1021/acscatal.6c03084
摘要
Abstract Joule-heating catalysis (JHC) creates a special catalytic environment defined by inverted inside-out heat transfer and dynamically driven kinetics, extending far beyond simple electrification of heat supply to establish a fundamentally distinct catalytic paradigm. This review provides a catalysis-centered analysis of JHC, emphasizing how the inverted thermal landscape (Tsolid > Tgas), ultrafast heating rates, and pulse-driven operation reshape catalytic activity and selectivity. JHC configurations (type I–III) are systematically classified to illustrate how conductive frameworks govern local heat delivery, interfacial energy transfer, and dynamic kinetic behavior. Particular attention is given to kinetic trapping of transient intermediates and selectivity inversion enabled by timescale engineering. Emerging non-thermal phenomena, including electric field-assisted lattice oxygen activation and electron-mediated pathways, are critically examined with emphasis on distinguishing them from microscopic thermal effects. By integrating structural design principles with mechanistic insights, this review proposes JHC as a precision platform for reprogramming reaction coordinates and accessing non-equilibrium catalytic manifolds, bridging catalysts with chemical electrification.
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