JOURNAL ARTICLE

Surface Modification of Micro-Silicon Anode for High-performance Lithium-Ion Batteries

Tongren ChenWengang YanYu DongSiyuan MaLiang MaQing HuangNing Li

Year: 2023 Journal:   Journal of Physics Conference Series Vol: 2563 (1)Pages: 012017-012017   Publisher: IOP Publishing

Abstract

Abstract Advanced lithium-ion batteries are urgently needed in consumer electronic products, electric vehicles, and energy storage, while the traditional carbonaceous anode materials with relatively low specific capacity gradually become difficult to meet the practical requirements in the market. Silicon-based anodes are considered one of the most promising alternatives in LIBs with high specific energy due to their considerable theoretical specific capacities. However, the large volume variation and severe surface parasitic reactions still limit the practical application of silicon anode. In this work, to suppress the surface side reactions and great volume changes, the electrochemical inert Li 3 PO 4 is proposed to be coated as the physical barrier between the silicon and electrolyte. The as-coated micro-silicon has been successfully prepared via a facile spray drying method with a low-temperature thermal treatment. Li 3 PO 4 coating layer with high shear modules can not only passivate the surface but also enable to suppression of the severe volumetric expansion and shrinkage of the silicon particle, thus enhancing the initial columbic efficiency and structural integrity of the silicon materials during long-term cycling. The optimized silicon anode with the proper amount of Li 3 PO 4 displays a superior initial columbic efficiency higher than 90% and a highly reversible capacity of 1394 mAh g -1 after charging and discharging 200 times. It is hoped this work should shed light on the modification of high-capacity anode materials.

Keywords:
Anode Silicon Materials science Lithium (medication) Electrolyte Nanotechnology Inert Surface modification Passivation Chemical engineering Composite material Optoelectronics Layer (electronics) Electrode Chemistry

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0.61
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Citation History

Topics

Advancements in Battery Materials
Physical Sciences →  Engineering →  Electrical and Electronic Engineering
Advanced Battery Materials and Technologies
Physical Sciences →  Engineering →  Electrical and Electronic Engineering
Advanced Battery Technologies Research
Physical Sciences →  Engineering →  Automotive Engineering
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