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◆ Journal of the American Chemical Society2026-07-03· Chemistry

Structurally Defined Low-Coordination Single-Atom Strategy for CO <sub>2</sub> Photoconversion to Formic Acid

Jiajing Zhang, Yi Zhang, Mei Zheng, Yao Wu, Jun Xiong, Longcheng Zhang, Pengfei Song, Pengfei Song, Pin Song, Pin Song, Moran Li, Wei Jiang, Jun Di, Zhichuan J. Xu

原始摘要(英文原文)· Original abstract
A central challenge in single-atom catalysis lies in the precise construction of structurally well-defined local coordination environments at isolated metal sites while retaining low coordination numbers. Here, we present an edge-bonding strategy that confines isolated metal atoms to well-defined edge sites of covalent triazine frameworks, enabling deterministic construction of structurally defined low-coordination environments. With Ni as a model, this approach yields single-atom sites with a well-defined Ni–N 1 –C 6 coordination motif and allows precise control over their spatial distribution. The strategy is readily extendable to other metals, affording single-atom catalysts with structurally defined and highly accessible low-coordination environments. Such geometrically low-coordination sites optimize photogenerated carrier separation and transport while selectively stabilizing the key *OCHO intermediate in the CO 2 reduction pathway, thereby directing the reaction toward HCOOH with 98.5% selectivity. This work establishes a principle for achieving low-coordination microenvironments at single-atom sites via macroscopic regulation of support structures, providing a rational strategy for single-atom catalyst design.
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Structurally Defined Low-Coordination Single-Atom Strategy for CO <sub>2</sub> Photoconversion to Formic Acid — 科研速览 Science Skim