A review of cold plasma for catalyst synthesis and modification

Qingbin Tian, Lansen Bi, Shuyan Lin, Jiang-Shan Gao, Yan He
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Abstract

Cold plasma has been extensively studied and developed in the field of energy storage and conversion, with a focus on its ability to assist in catalyst synthesis, surface modification, the introduction of heteroatoms, the generation of defects and vacancies, the improvement of catalyst dispersion, and the reduction of particle size. In contrast to conventional calcination and chemical methods, the energy from cold plasma can be transferred directly to the catalyst and carrier during the treatment process, which can improve the interaction between the loaded catalyst and carrier by changing the internal structure and surface morphology of the catalyst. Therefore, these properties make cold plasma quite green, safe, and efficient for catalyst synthesis and modification. In this paper, the characteristics and applications of various cold plasma technologies, as well as the synergistic treatment of cold plasma technology with thermodynamic principles on catalysts, are analyzed. Based on current research progress, this paper provides a summary and outlook on the synthesis and modification of catalysts using cold plasma.
用于催化剂合成和改性的冷等离子体综述
冷等离子体在能源储存和转换领域得到了广泛的研究和开发,重点是其在辅助催化剂合成、表面改性、引入杂原子、产生缺陷和空位、改善催化剂分散性以及减小颗粒尺寸等方面的能力。与传统的煅烧和化学方法相比,冷等离子体的能量可以在处理过程中直接传递到催化剂和载体,从而通过改变催化剂的内部结构和表面形态来改善负载催化剂和载体之间的相互作用。因此,这些特性使得冷等离子体在催化剂合成和改性方面相当绿色、安全和高效。本文分析了各种冷等离子体技术的特点和应用,以及冷等离子体技术与热力学原理对催化剂的协同处理。根据目前的研究进展,本文对利用冷等离子体合成和改性催化剂进行了总结和展望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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