Yichi Wang, Hao Luo, Xin Zhong, Yinyin Zhou, Aiping Jin, Linghui Yu, Ming Li, Jun Xiong, Junjun Peng
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引用次数: 0
Abstract
Hard carbon materials are attracted as excellent anode materials for sodium-ion batteries due to their good electrical conductivity, high reversible capacity, low operating voltage and stable cycling performance. Herein, waste denim fabrics were used as raw material to prepare denim-based hard carbon (DHC) via a one-step carbonization method, and its sodium storage performance as an anode material for sodium-ion batteries was investigated. The effects of carbonization temperature on the microstructure and electrochemical sodium storage performance of DHC were investigated using X-ray diffraction, N2 adsorption–desorption isotherms, Raman spectroscopy, scanning electron microscopy, cyclic voltammetry and galvanostatic charge–discharge methods. The results demonstrate that DHC derived at a carbonization temperature of 1300 °C with an optimal graphitic microcrystal size, pore structure and surface defect, exhibits the best electrochemical performance. At a current density of 50 mAh·g−1, it has a reversible specific capacity of 317.1 mAh·g−1 and an initial Coulombic efficiency of 87.76%. After 1000 cycles at a current density of 1000 mA·g−1, the capacity retention rate is 84.5%. This study demonstrates the potential of converting waste textile resources into high-performance materials for sodium-ion batteries, which could contribute to sustainable development by promoting the high-value utilization of textile waste and supporting environmental protection.
期刊介绍:
The Journal of Materials Science publishes reviews, full-length papers, and short Communications recording original research results on, or techniques for studying the relationship between structure, properties, and uses of materials. The subjects are seen from international and interdisciplinary perspectives covering areas including metals, ceramics, glasses, polymers, electrical materials, composite materials, fibers, nanostructured materials, nanocomposites, and biological and biomedical materials. The Journal of Materials Science is now firmly established as the leading source of primary communication for scientists investigating the structure and properties of all engineering materials.