Sun Shubin, Zhang Yudi, Shi Xin, Sun Wen, Felser Claudia, Li Wei, Li Guowei
CAS Key Laboratory of Magnetic Materials and Devices, and Zhejiang Province Key Laboratory of Magnetic Materials and Application Technology, Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, Ningbo, 315201, China.
State Key Laboratory Breeding Base of Green Chemistry-Synthesis Technology Key Laboratory of Green Chemistry-Synthesis Technology of Zhejiang Province, College of Chemical Engineering, Zhejiang University of Technology, Hangzhou, 310014, China.
Adv Mater. 2024 Sep;36(37):e2312524. doi: 10.1002/adma.202312524. Epub 2024 Apr 30.
Catalytic materials play crucial roles in various energy-related processes, ranging from large-scale chemical production to advancements in renewable energy technologies. Despite a century of dedicated research, major enduring challenges associated with enhancing catalyst efficiency and durability, particularly in green energy-related electrochemical reactions, remain. Focusing only on either the crystal structure or electronic structure of a catalyst is deemed insufficient to break the linear scaling relationship (LSR), which is the golden rule for the design of advanced catalysts. The discourse in this review intricately outlines the essence of heterogeneous catalysis reactions by highlighting the vital roles played by electron properties. The physical and electrochemical properties of electron charge and spin that govern catalysis efficiencies are analyzed. Emphasis is placed on the pronounced influence of external fields in perturbing the LSR, underscoring the vital role that electron spin plays in advancing high-performance catalyst design. The review culminates by proffering insights into the potential applications of spin catalysis, concluding with a discussion of extant challenges and inherent limitations.
催化材料在各种与能源相关的过程中发挥着关键作用,从大规模化学生产到可再生能源技术的进步。尽管经过了一个世纪的专门研究,但与提高催化剂效率和耐久性相关的主要长期挑战仍然存在,特别是在与绿色能源相关的电化学反应中。仅关注催化剂的晶体结构或电子结构被认为不足以打破线性标度关系(LSR),而线性标度关系是先进催化剂设计的黄金法则。本综述中的论述通过强调电子性质所起的重要作用,错综复杂地概述了多相催化反应的本质。分析了控制催化效率的电子电荷和自旋的物理和电化学性质。重点强调了外部场在扰动线性标度关系方面的显著影响,突出了电子自旋在推进高性能催化剂设计中所起的关键作用。综述最后对自旋催化的潜在应用提出了见解,并讨论了现存的挑战和固有局限性。