Optimizing the Fermi Level of a 3D Current Collector with Ni3S2/Ni3P Heterostructure for Dendrite‐Free Sodium‐Metal Batteries

Author:

Huang Huijuan1,Wang Yunlei12,Li Menghao3,Yang Hai1,Chen Zhihao1,Jiang Yang4,Ye Shufen1,Yang Yaxiong5,He Shengnan5,Pan Hongge5,Wu Xiaojun12,Yao Yu1,Gu Meng3,Yu Yan16ORCID

Affiliation:

1. Hefei National Research Center for Physical Sciences at the Microscale, Department of Materials Science and Engineering, CAS Key Laboratory of Materials for Energy Conversion, iChEM (Collaborative Innovation Center of Chemistry for Energy Materials) University of Science and Technology of China Hefei Anhui 230026 China

2. Collaborative Innovation Center of Chemistry for Energy Materials, and CAS Center for Excellence in Nanoscience University of Science and Technology of China Hefei Anhui 230026 China

3. Department of Materials Science and Engineering Southern University of Science and Technology Shenzhen 518055 China

4. Jiujiang DeFu Technology Co. Ltd. Jiujiang Jiangxi 332000 China

5. Institute of Science and Technology for New Energy Xi'an Technological University Xi'an 710021 China

6. National Synchrotron Radiation Laboratory Hefei Anhui 230026 China

Abstract

AbstractRechargeable sodium‐metal batteries (RSMBs) with high energy density and low cost are attracting extensive attention as promising energy‐storage technologies. However, the poor cyclability and safety issues caused by unstable solid electrolyte interphase (SEI) structure and dendrite issues limit their practical application. Herein, it is theoretically predicted that constructing the Ni3S2/Ni3P heterostructure with high work function can lower the Fermi energy level, and therefore effectively suppressing continuous electrolyte decomposition derived from the electron‐tunneling effect after long‐term sodiation process. Furthermore, the Ni3S2/Ni3P heterostructure on 3D porous nickel foam (Ni3S2/Ni3P@NF) is experimentally fabricated as an advanced Na‐anode current collector. The seamless Ni3S2/Ni3P heterostructure not only offers abundant active sites to induce uniform Na+ deposition and enhance ion‐transport kinetics, but also facilitates the formation of stable SEI for dendrite‐free sodium anode, which are confirmed by cryogenic components transmission electron microscopy tests and in situ spectroscopy characterization. As a result, the Na‐composite anode (Ni3S2/Ni3P@NF@Na) delivers stable plating/stripping process of 5000 h and high average Coulombic efficiency of 99.7% over 2500 cycles. More impressively, the assembled sodium‐ion full cell displays ultralong cycle life of 10 000 cycles at 20 C. The strategy of stabilizing the sodium‐metal anode gives fundamental insight into the potential construction of advanced RSMBs.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Guangdong Innovative and Entrepreneurial Research Team Program

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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