生物质衍生碳材料作为钾离子电池的研究进展
Research Progress on Biomass-Derived Carbon Materials as Potassium Ion Batteries
DOI: 10.12677/MS.2024.142019, PDF,   
作者: 杨留超, 赵 虔虔:成都大学机械工程学院,四川 成都
关键词: 钾离子电池生物质碳原子掺杂 Potassium-Ion Battery Biomass Carbon Atomic Doping
摘要: 生物质碳材料因其资源丰富、来源广泛等优点而备受关注,不同方法制备得到的生物质碳材料作为钾离子负极材料具有广阔的应用前景。但由于初始库伦效率低、离子储存位点有限等因素,需要通过元素掺杂,表面涂覆等方式修饰以提升电化学性能。本文综述了近年来钾离子电池碳负极材料的合成方法以及原子掺杂改性带来的影响。
Abstract: Biomass carbon materials have received much attention due to their abundant resources and broad sources, and biomass carbon materials prepared by different methods have a broad application prospect as potassium ion anode materials. However, due to factors such as low initial Coulombic efficiency and limited ion storage sites, it is necessary to modify them by element doping, surface coating, etc. to improve electrochemical performance. Heteroatom doping is a simple and efficient performance enhancement method. This article reviews the synthesis methods of carbon anode materials for potassium ion batteries and the impact of atomic doping modification in recent years.
文章引用:杨留超, 赵 虔虔. 生物质衍生碳材料作为钾离子电池的研究进展[J]. 材料科学, 2024, 14(2): 167-172. https://doi.org/10.12677/MS.2024.142019

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