Authors
Pengliang Sun, Ziyi Li, Tianli Wu, Keying Su, Jing Cao, Wenbin Jiang, Min Bi, Xiong Zheng, Zhiheng Lyu, Xuan Yang, Yinguang Chen, Ming Zhao
Published in
Angewandte Chemie (International ed. in English). Pages e1513379. Sep 08, 2026. Epub Sep 08, 2026.
Abstract
Electrochemical nitrate reduction reaction (NO3RR) using renewable electricity offers a carbon-free and energy-saving route to remediating nitrate-polluted wastewater while producing ammonia (NH3). However, conventional catalysts for NO3RR suffer from strong adsorption of NOx intermediates that hinders further hydrogenation, resulting in diminished selectivity and catalyst deactivation. Here we construct a Janus-type CuN3-PdS3 dual-atom catalyst featuring N/S dual bridging, namely CuPd-SNC, to enable decoupled NOx species adsorption and hydrogen supply for hydrogenation on Cu and Pd sites, respectively. Excitingly, CuPd-SNC delivers a near-unity Faradaic efficiency of 99.58% for NH3 synthesis and a production rate of 1.34 mmol h-1 cm-2. When integrated into a Zn-nitrate battery, CuPd-SNC achieves a maximum power density of 13.0 mW cm-2 and demonstrates stable operation for >160 h. In situ spectroscopic and theoretical analyses reveal the site-specific functionalities of the CuN3-PdS3 Janus configuration, wherein Cu sites markedly enhance the adsorption/activation of NOx - intermediates, Pd sites enable continuous proton supply and reduce the energy barriers for multi-step *NOx hydrogenation, while N/S dual bridges serve as a proton reservoir. These findings highlight the site-specific but complementary functioning of dual-atom catalysts in synergistically pushing the limit of conventional electrocatalysts, offering fundamental insights into the rational catalyst design for NH3 synthesis.
PMID:
42711753
Bibliographic data and abstract were imported from PubMed on 09 Sep 2026.
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