DOI: 10.1021/acscatal.6c04933 ISSN: 2155-5435

Reprogramming Interfacial Hydrogen-Bond Networks via Asymmetric Single-Atom Catalysts

Jize Li, Limeng Sun, Renyi Li, Zhuoyang Gong, Jiaye Li, Wenchao Hu, Hsingkai Chu, Xudong Peng, Yinning Zhu, Xiaoxia Chang, Ruiqin Zhong, Xiao Hai, Ruqiang Zou

Abstract

Interfacial water plays a pivotal role in electrocatalysis by governing proton-coupled electron transfer and reaction kinetics. However, strategies to actively regulate interfacial hydrogen-bond networks remain limited, and the role of atomic-scale catalytic sites in controlling water organization is still poorly understood. Here, we report a rapid Joule-heating strategy that converts symmetric Co-N4 sites into asymmetric Co-N3O1 single-atom sites, enabling precise modulation of the interfacial hydrogen-bond network during catalysis. Combined experimental characterization and theoretical simulations reveal that O coordination breaks the local symmetry of Co centers, reconstructs interfacial water, and weakens over-connected hydrogen-bond networks, providing a more favorable interfacial environment for water-mediated proton transfer and oxygenated-intermediate conversion. As a result, the reconstructed interfacial hydrogen-bond network promotes efficient four-electron oxygen reduction, enabling Co-NC-N3O1 to achieve a half-wave potential of 0.866 V, substantially outperforming its symmetric Co-N4 counterpart and surpassing commercial Pt/C. When integrated into aqueous zinc-air batteries (ZABs), Co-NC-N3O1 delivers a peak power density of 217.2 mW cm–2 and a specific capacity of 805.1 mAh gZn–1. This work reveals that asymmetric single-atom modulation can actively reprogram the interfacial hydrogen-bond network, providing a paradigm for catalyst-water interface engineering.