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Machine Learning-Assisted Low-Dimensional Electrocatalysts Design for Hydrogen Evolution Reaction

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摘要 Efficient electrocatalysts are crucial for hydrogen generation from electrolyzing water.Nevertheless,the conventional"trial and error"method for producing advanced electrocatalysts is not only cost-ineffective but also time-consuming and labor-intensive.Fortunately,the advancement of machine learning brings new opportunities for electrocatalysts discovery and design.By analyzing experimental and theoretical data,machine learning can effectively predict their hydrogen evolution reaction(HER)performance.This review summarizes recent developments in machine learning for low-dimensional electrocatalysts,including zero-dimension nanoparticles and nanoclusters,one-dimensional nanotubes and nanowires,two-dimensional nanosheets,as well as other electrocatalysts.In particular,the effects of descriptors and algorithms on screening low-dimensional electrocatalysts and investigating their HER performance are highlighted.Finally,the future directions and perspectives for machine learning in electrocatalysis are discussed,emphasizing the potential for machine learning to accelerate electrocatalyst discovery,optimize their performance,and provide new insights into electrocatalytic mechanisms.Overall,this work offers an in-depth understanding of the current state of machine learning in electrocatalysis and its potential for future research.
出处 《Nano-Micro Letters》 SCIE EI CAS CSCD 2023年第12期161-187,共27页 纳微快报(英文版)
基金 This work was supported by the National Natural Science Foundation of China(Grant No.22008098,52122408) the Program for Science&Technology Innovation Talents in Universities of Henan Province(No.22HASTIT008) the Programs for Science and Technology Development of Henan Province,China(No.222102320065) the Key Specialized Research and Development Breakthrough(Science and Technology)in Henan Province(No.212102210214) the Natural Science Foundations of Henan Province(No.222300420502) the Key Scientific Research Projects of University in Henan Province(No.23B430002).
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