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Updated: May 21, 2025

Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
Published on: April 10, 2018
Universal Single Atom Engineering Enhances Coulombic Efficiency of Ion Storage in Carbon Materials
Tiantian Wang1, Xu Deng2,3, Wei Shao1
1Key Laboratory of Advanced Civil Engineering Materials of Ministry of Education, School of Materials Science and Engineering, Tongji University, Shanghai, 200092, P. R. China.
Abstract:
Metal single atoms are widely used to optimize the microstructure of carbon materials to improve their ion storage capacity and rate performance, but the impact on another key parameter, Coulombic efficiency (CE), is not sufficiently addressed and confirmed. Herein, a universal phenomenon is reported that carbon-loaded asymmetric sulfur-modified metal-N4 moiety (MN4-S, M = Zn, Fe, Cu, and Ni) possesses higher CE than the symmetric MN4 moiety, and this phenomenon is applicable to various of carbon matrices, ions (Li+, Na+, and K+), charge and discharge rates, and electrolyte formulations. The carbon-loaded asymmetric MN4-S moiety exhibits larger CEs (0.03-0.46% higher of average CEs, 4.2-28.4% higher of the initial CEs) and smaller variance compared to the MN4 moiety, implying better reversible stability. The mechanism driving this phenomenon is revealed by the ZnN4-S sodium storage process. The asymmetric MN4-S coordination promotes the rapid ions diffusion kinetics by changing the charge density. Meanwhile, the MN4-S moiety can reduce the adsorption energy of ions and regulate the surface chemical reactivity of the material to increase the reversibility of surface ion storage, thereby achieving higher CE and better stability.
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