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Electrothermal catalysis: paradigm shift from monolithic Joule heating to interparticle electrical promotion
Xueyi Mei1, Yexin Zhang1, Zhaoliang Zhang2
1Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, Ningbo 315201, China.
None:
Conventional thermal catalysis, dependent on carbon-intensive fossil fuels, faces pressing sustainability challenges. As an alternative relying on renewable electricity, electrothermal catalysis utilizing catalyst Joule heating enables decarbonized chemical processes and is advancing rapidly under carbon-neutrality mandates. Here, we clarify the fundamental characteristics and scope of electrothermal catalysis, especially highlighting advances in our own works. Accordingly, a paradigm shift from monolithic Joule heating to interparticle electrical promotion is proposed. Monolithic catalyst architectures employ the Joule heating of monolithic supports for compact and efficient heating, whereas interparticle counterparts leverage both Joule heating and electrical promotion between conductive catalyst particles, not only substantially enhancing the intrinsic activity of catalysts, but also drastically reducing energy costs and carbon footprints for the sustainable electrification of chemical processes. Ultimately, the perspectives and challenges of interparticle electrical promotion are highlighted and analysed to advance this transformative shift toward a viable industrial process.
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