催化作用
合理设计
纳米技术
甲烷
温室气体
材料科学
非热等离子体
生化工程
光催化
功能(生物学)
反应堆设计
工艺工程
热稳定性
环境科学
多相催化
转化式学习
化学工程
设计要素和原则
非平衡态热力学
热的
化学稳定性
循环经济
化学反应工程
作者
Junliang Mou,Jun-Yi Xu,Jiaqi Sun,Xuanhao Wu,Chu Qin,Zhong‐Jie Jiang,T. Maiyalagan,Zhongqing Jiang
出处
期刊:Chemsuschem
[Wiley]
日期:2025-11-17
卷期号:19 (1): e202501766-e202501766
标识
DOI:10.1002/cssc.202501766
摘要
Nonthermal plasma (NTP) technology is emerging as a transformative engineering tool for the rational design and synthesis of advanced catalysts, addressing the critical limitations of conventional high‐temperature preparation methods. Operating under mild conditions, the unique nonequilibrium environment of NTP—rich in energetic electrons, ions, and reactive radicals—enables precise, multiscale control over catalyst properties. This allows for the creation of highly dispersed nanoparticles, tailored defect structures, and enhanced metal–support interactions that are often inaccessible via traditional thermal routes. This review provides a comprehensive overview of recent progress in applying NTP specifically as a synthesis and modification strategy to engineer high‐performance catalysts for the valorization of key greenhouse gases, namely CO 2 and CH 4 . We focus on how these NTP‐engineered catalysts exhibit superior activity, selectivity, and stability in critical reactions, including CO 2 hydrogenation, electrocatalytic and photocatalytic CO 2 reduction, and methane reforming. By elucidating the structure–performance relationships established through plasma‐based engineering, this review highlights the unique advantages of NTP in catalyst design and provides insights for the development of next‐generation catalysts for sustainable chemical production.
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