Homogeneous distributed natural pyrite-derived composite induced by modified graphite as high-performance lithium-ion batteries anode

被引:0
|
作者
Juan Yu
Yinbo Wei
Bicheng Meng
Jiaxin Peng
Kai Yang
Tianxing Chen
Naixing Yang
Xiuyun Chuan
机构
[1] Xi’an University of Architecture and Technology,School of Metallurgical Engineering
[2] Peking University,School of Earth and Space Sciences
[3] Xi’an University of Architecture and Technology,Shaanxi Key Laboratory of Nano
[4] Xi’an University of Architecture Technology,Materials and Technology, School of Mechanical and Electrical Engineering
来源
International Journal of Minerals, Metallurgy and Materials | 2023年 / 30卷
关键词
natural pyrite; modified graphite; anode; lithium-ion batteries; homogeneous grain distributions;
D O I
暂无
中图分类号
学科分类号
摘要
Natural minerals-based energy materials have attracted enormous attention because of the advantages of good materials consistency, high production, environmental friendliness, and low cost. The uniform distribution of grains can effectively inhibit the aggregation of active materials, improving lithium storage performance. In this work, natural graphite is modified by polyvinylpyrrolidone to obtain modified graphite with reduced size and better dispersion. Natural pyrite composite polyvinylpyrrolidone-modified graphite (pyrite/PG) material with uniform particle distribution is obtained by the ball milling process. The subsequent calcination process converts pyrite/PG into Fe1−xS compounded with polyvinylpyrrolidone-modified graphite (Fe1−xS/PG). The homogeneous grain distributions of active material can facilitate the faster transfer of electrons and promote the efficient utilization of active materials. The as-prepared Fe1−xS/PG electrode exhibits a remarkably reversible specific capacity of 613.0 mAh·g−1 at 0.2 A·g−1 after 80 cycles and an excellent rate capability of 523.0 mAh·g−1 at 5 A·g−1. Even at a higher current density of 10 A·g−1, it can deliver a specific capacity of 348.0 mAh·g−1. Moreover, the dominant pseudocapacitance in redox reactions accounts for the impressive rate and cycling stability. This work provides a low-cost and facile method to fabricate natural mineral-based anode materials and apprise readers about the impact of uniform particle distribution on lithium storage performance.
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页码:1353 / 1362
页数:9
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