TY - JOUR
T1 - Revolutionary Insights into the Material Structure Design Enabled by Single-Atom Catalysts
AU - Li, Chen
AU - Sun, Zhiyi
AU - Guo, Xinyu
AU - Tang, Bing
AU - Chen, Wenxing
AU - Wang, Dingsheng
AU - Tang, Jie
AU - Zheng, Kun
N1 - Publisher Copyright:
© 2026 American Chemical Society
PY - 2026/7/3
Y1 - 2026/7/3
N2 - Single-atom catalysts (SACs) propel catalytic science into the era of atomic manufacturing. Today, synthesizing SACs extends beyond anchoring atomically dispersed metal atoms, increasingly focusing on the synergistic integration of single-atom active sites with other functional components. More significantly, single-atom active sites provide an ideal platform for validating catalytic reaction mechanisms, having triggered intense discussions and revolutionary insights in recent years. Consequently, this review comprehensively examines both classical and recently developed SAC architectures, while systematically summarizing reaction mechanisms based on these structures, including coordination engineering, dynamic coordination, metal–support interaction, d–p orbital hybridization, spin active centers, asymmetric active centers, f-block elements, pathway synergy, and distance effect. These mechanistic principles establish targeted design objectives for atomic structures of efficient catalysts and furnish atomic-level blueprints for materials genome initiatives.
AB - Single-atom catalysts (SACs) propel catalytic science into the era of atomic manufacturing. Today, synthesizing SACs extends beyond anchoring atomically dispersed metal atoms, increasingly focusing on the synergistic integration of single-atom active sites with other functional components. More significantly, single-atom active sites provide an ideal platform for validating catalytic reaction mechanisms, having triggered intense discussions and revolutionary insights in recent years. Consequently, this review comprehensively examines both classical and recently developed SAC architectures, while systematically summarizing reaction mechanisms based on these structures, including coordination engineering, dynamic coordination, metal–support interaction, d–p orbital hybridization, spin active centers, asymmetric active centers, f-block elements, pathway synergy, and distance effect. These mechanistic principles establish targeted design objectives for atomic structures of efficient catalysts and furnish atomic-level blueprints for materials genome initiatives.
KW - atomic manufacturing
KW - coordination engineering
KW - electronic structure
KW - material structure design
KW - reaction mechanism
KW - single-atom catalyst
UR - https://www.scopus.com/pages/publications/105043794741
U2 - 10.1021/acscatal.6c02778
DO - 10.1021/acscatal.6c02778
M3 - Review article
AN - SCOPUS:105043794741
SN - 2155-5435
VL - 16
SP - 11766
EP - 11819
JO - ACS Catalysis
JF - ACS Catalysis
IS - 13
ER -