Unlocking Deep and Fast Potassium‐Ion Storage through Phosphorus Heterostructure

Author:

Zhao Xiaoju1,Geng Shitao1,Zhou Tong2,Wang Yan1,Tang Shanshan1,Qu Zongtao1,Wang Shuo1,Zhang Xiao1,Xu Qiuchen1,Yuan Bin1,Ouyang Zhaofeng1,Peng Huisheng3,Tang Shaochun4,Sun Hao1ORCID

Affiliation:

1. Frontiers Science Center for Transformative Molecules School of Chemistry and Chemical Engineering and Zhangjiang Institute for Advanced Study Shanghai Jiao Tong University Shanghai 200240 China

2. School of Physics and Optoelectronic Engineering Shandong University of Technology Zibo 255049 China

3. State Key Laboratory of Molecular Engineering of Polymers Department of Macromolecular Science and Laboratory of Advanced Materials Fudan University Shanghai 200438 China

4. Key National Laboratory of Solid State Microstructures Department of Materials Science and Engineering Collaborative Innovation Center of Advanced Microstructures Jiangsu Key Laboratory of Artificial Functional Materials College of Engineering and Applied Sciences Nanjing University Nanjing 210093 China

Abstract

AbstractPotassium‐ion battery represents a promising alternative of conventional lithium‐ion batteries in sustainable and grid‐scale energy storage. Among various anode materials, elemental phosphorus (P) has been actively pursued owing to the ideal natural abundance, theoretical capacity, and electrode potential. However, the sluggish redox kinetics of elemental P has hindered fast and deep potassiation process toward the formation of final potassiation product (K3P), which leads to inferior reversible capacity and rate performance. Here, it is shown that rational design on black/red P heterostructure can significantly improve K‐ion adsorption, injection and immigration, thus for the first time unlocking K3P as the reversible potassiation product for elemental P anodes. Density functional theory calculations reveal the fast adsorption and diffusion kinetics of K‐ion at the heterostructure interface, which delivers a highly reversible specific capacity of 923 mAh g−1 at 0.05 A g−1, excellent rate capability (335 mAh g−1 at 1 A g−1), and cycling performance (83.3% capacity retention at 0.8 A g−1 after 300 cycles). These results can unlock other sluggish and irreversible battery chemistries toward sustainable and high‐performing energy storage.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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