合理设计
纳米技术
生化工程
持续性
设计要素和原则
仿生学
清洁能源
催化作用
绿色化学
计算机科学
系统工程
管理科学
材料科学
工程类
化学
生态学
环境工程
生物
生物化学
离子液体
作者
Jinyang Guo,Yousof Haghshenas,Yiran Jiao,Priyank V. Kumar,Boris I. Yakobson,Ajit K. Roy,Yan Jiao,Klaus Regenauer‐Lieb,David Nguyen,Zhenhai Xia
标识
DOI:10.1002/adma.202407102
摘要
Abstract Catalysis is crucial for clean energy, green chemistry, and environmental remediation, but traditional methods rely on expensive and scarce precious metals. This review addresses this challenge by highlighting the promise of earth‐abundant catalysts and the recent advancements in their rational design. Innovative strategies such as physics‐inspired descriptors, high‐throughput computational techniques, and artificial intelligence (AI)‐assisted design with machine learning (ML) are explored, moving beyond time‐consuming trial‐and‐error approaches. Additionally, biomimicry, inspired by efficient enzymes in nature, offers valuable insights. This review systematically analyses these design strategies, providing a roadmap for developing high‐performance catalysts from abundant elements. Clean energy applications (water splitting, fuel cells, batteries) and green chemistry (ammonia synthesis, CO 2 reduction) are targeted while delving into the fundamental principles, biomimetic approaches, and current challenges in this field. The way to a more sustainable future is paved by overcoming catalyst scarcity through rational design.
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