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Updated: Jan 15, 2026

Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
Published on: April 10, 2018
Atomic Ru-Mediated Spontaneous Heterointerface Phase Transition Enables Ampere-Level Catalytic Performance in Paired
Zhouhong Yu1, Xiaonan Zheng2, Cong Lin1
1School of Chemistry and Chemical Engineering, State Key Laboratory of Bio-based Fiber Materials, Zhejiang Sci-Tech University, Hangzhou, Zhejiang, 310018, China.
Abstract:
Phase transition regulation is a promising strategy to optimize the catalytic properties of catalysts, playing a crucial role in enhancing electrocatalytic efficiency. However, the intrinsic relationship between atomic-scale interface phase transitions and catalytic performance remains unclear. Herein, we report a heteroatomic interfacial phase transition of Co3S4/Co heterostructured nanosheets to Co9S8/Co by anchoring single-atom Ru under thermal treatment (RuSA-Co9S8/Co-T), resulting in ampere-level catalytic performance for the sustained paired electrosynthesis. Theoretical calculations and in situ spectroscopy confirm the spontaneous transition to a more stable structure triggered by atomic Ru, which synergistically optimizes the formation kinetics of key intermediates and reduces the energy barrier of the rate-determining steps on RuSA-Co9S8/Co-T. Impressively, this catalyst can be directly applied in membrane electrode assembly electrolyzers for nitrite-glycerol co-electrolysis. Within a wide potential window of 1.2-2.0 V, the average Faradaic efficiencies of NH3 and formate exceed 90%, with the highest yields reaching 95.83 mg h-1 cm-2 and 567.38 mg h-1 cm-2 at 2.0 V, respectively, alongside stable operation for 100 h at an industrial current density of 500 mA cm-2. Our work provides new insights into the development of high-performance catalysts.
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