Hierarchical Architecture Engineering of Branch‐Leaf‐Shaped Cobalt Phosphosulfide Quantum Dots: Enabling Multi‐Dimensional Ion‐Transport Channels for High‐Efficiency Sodium Storage

Author:

Zhao Wenxi12,Ma Xiaoqing1,Gao Lixia3,Wang Xiaodeng3,Luo Yongsong2,Wang Yan2,Li Tingshuai2,Ying Binwu2,Zheng Dongdong4,Sun Shengjun4,Liu Qian5,Zheng Yinyuan6,Sun Xuping24ORCID,Feng Wenming6

Affiliation:

1. School of Electronic Information Engineering Yangtze Normal University Fuling Chongqing 408100 China

2. Institute of Fundamental and Frontier Sciences University of Electronic Science and Technology of China Chengdu Sichuan 610054 China

3. National & Local Joint Engineering Research Center of Targeted and Innovative Therapeutics College of Pharmacy Chongqing University of Arts and Sciences Yongchuan Chongqing 402160 China

4. College of Chemistry Chemical Engineering and Materials Science Shandong Normal University Jinan Shandong 250014 China

5. Institute for Advanced Study Chengdu University Chengdu Sichuan 610106 China

6. Huzhou Key Laboratory of Translational Medicine Department of General Surgery First People's Hospital affiliated to Huzhou University Huzhou Zhejiang 313000 China

Abstract

AbstractNew‐fashioned electrode hosts for sodium‐ion batteries (SIBs) are elaborately engineered to involve multifunctional active components that can synergistically conquer the critical issues of severe volume deformation and sluggish reaction kinetics of electrodes toward immensely enhanced battery performance. Herein, it is first reported that single‐phase CoPS, a new metal phosphosulfide for SIBs, in the form of quantum dots, is successfully introduced into a leaf‐shaped conductive carbon nanosheet, which can be further in situ anchored on a 3D interconnected branch‐like N‐doped carbon nanofiber (N‐CNF) to construct a hierarchical branch‐leaf‐shaped CoPS@C@N‐CNF architecture. Both double carbon decorations and ultrafine crystal of the CoPS in‐this exquisite architecture hold many significant superiorities, such as favorable train‐relaxation, fast interfacial ion‐migration, multi‐directional migration pathways, and sufficiently exposed Na+‐storage sites. In consequence, the CoPS@C@N‐CNF affords remarkable long‐cycle durability over 10 000 cycles at 20.0 A g−1 and superior rate capability. Meanwhile, the CoPS@C@N‐CNF‐based sodium‐ion full cell renders the potential proof‐of‐feasibility for practical applications in consideration of its high durability over a long‐term cyclic lifespan with remarkable reversible capacity. Moreover, the phase transformation mechanism of the CoPS@C@N‐CNF and fundamental springhead of the enhanced performance are disclosed by in situ X‐ray diffraction, ex situ high‐resolution TEM, and theoretical calculations.

Funder

China Postdoctoral Science Foundation

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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