Single‐Atom Nano‐Islands: Unlocking New Horizons in Catalytic Activity and Stability
Abstract
Abstract Single‐atom catalysts (SACs), renowned for their maximized atomic utilization, tunable coordination environments, and unique electronic structures, are critical to energy conversion and storage. However, obstacles to their practical performance include atomic agglomeration (caused by high surface free energy) and active site passivation (due to overly strong metal–support chemical bonds). Single‐atom nano‐islands (SANIs) catalysts, characterized by confined spaces and innovative structural designs, have better electrocatalytic activity and stability. This review comprehensively analyzes recent advancements in SANIs catalysts, highlighting their contributions to catalytic activity, stability, structural optimization, and selectivity. We systematically summarize the design principles and strategies for SANIs electrocatalysts by focusing on material selection, metal–support interactions, and coordination structures. Finally, the challenges and opportunities associated with SANIs catalysts to promote their development in heterogeneous catalysis and accelerate their transition into industrial applications are discussed.
Article Details
Authors (9)
Peng Wang
Qiaofu Shi
Industrial Research Institute of Nonwovens & Technical Textiles Shandong Center for Engineered Nonwovens (SCEN) College of Textiles & Clothing Qingdao University Qingdao 266071 P. R. China
Yuan Gao
Yong Wan
Jun Zhang
Jungmok You
Department of Convergent Biotechnology & Advanced Materials Science Kyung Hee University 1732 Deogyeong‐daero, Giheung‐gu, Yongin‐si Gyeonggi‐do 17104 South Korea
Yun‐Ze Long
Shandong Key Laboratory of Medical and Health Textile Materials College of Physics Qingdao University Qingdao 266071 P. R. China
Jie Zheng
Key Laboratory of Radiation Physics and Technology, Ministry of Education, Institute of Nuclear Science and Technology
Yusuke Yamauchi