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驱动长循环锂硫电池的单原子催化剂的电子调制与对称性破缺工程

Electronic Modulation and Symmetry-Breaking Engineering of Single-Atom Catalysts Driving Long-Cycling Li-S Battery.

作者信息

Zhang Fanchao, Tang Zihuan, Zhang Tengfei, Xiao Hong, Zhuang Huifeng, Han Pinyu, Zheng Lirong, Jiang Lei, Gao Qiuming

机构信息

Key Laboratory of Bio-inspired Smart Interfacial Science and Technology of Ministry of Education, School of Chemistry, Beihang University, 100191, Beijing, P. R. China.

The State Key Laboratory of Refractories and Metallurgy, Institute of Advanced Materials and Nanotechnology, Wuhan University of Science and Technology, 430081, Wuhan, P. R. China.

出版信息

Angew Chem Int Ed Engl. 2025 Feb 3;64(6):e202418749. doi: 10.1002/anie.202418749. Epub 2024 Nov 16.

Abstract

Developing efficient and durable single-atom catalysts is vitally important for the sulfur redox reaction (SROR) in Li-S battery, while it remains enormous challenging. Herein, undercoordinated Ni-N moieties anchored on N,S-codoped porous carbon (Ni-NSC) is obtained to enhance the SROR. The experiments and theoretical calculations indicate that the symmetry-breaking charge transfer in Ni single-atom catalyst originates from tuning effect of sulfur atoms mediated Ni-N moieties, which can both facilitate the chemical adsorption by formation of N-Ni⋅⋅⋅S , and achieve a rapid redox conversion of polysulfides because of the enhanced electron transfer. As results, the Ni-NSC based Li-S battery delivers a very high initial reversible capacity (1025 mAh g at 1 C), as well as outstanding cycling-stability for 2400 cycles at 2 C and 3 C, respectively. Noteworthy, the areal capacity can reach 7.8 mAh cm at 0.05 C and a retention capacity of 4.7 mAh cm after 100 cycles at 0.2 C for Ni-NSC based Li-S battery with sulfur loading of 5.88 mg cm. This work provides profound insight for rational optimizing microscopic electronic density of active site to promoting SROR in metal-sulfur batteries.

摘要

开发高效且耐用的单原子催化剂对于锂硫电池中的硫氧化还原反应(SROR)至关重要,然而这仍然极具挑战性。在此,通过在氮、硫共掺杂的多孔碳(Ni-NSC)上锚定配位不足的Ni-N基团来增强SROR。实验和理论计算表明,Ni单原子催化剂中对称性破缺的电荷转移源于硫原子介导的Ni-N基团的调谐效应,这既能通过形成N-Ni⋅⋅⋅S促进化学吸附,又因增强的电子转移实现多硫化物的快速氧化还原转化。结果,基于Ni-NSC的锂硫电池具有非常高的初始可逆容量(1 C时为1025 mAh g),以及分别在2 C和3 C下循环2400次的出色循环稳定性。值得注意的是,对于硫负载量为5.88 mg cm的基于Ni-NSC的锂硫电池,在0.05 C时面积容量可达到7.8 mAh cm ,在0.2 C下循环100次后保留容量为4.7 mAh cm 。这项工作为合理优化活性位点的微观电子密度以促进金属硫电池中的SROR提供了深刻见解。

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