冷等离子体法合成硫化锂及其储能特性

IF 2.1 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY JOM Pub Date : 2024-08-22 DOI:10.1007/s11837-024-06763-4
Hongyong Shi, Jia Yang, Lixin Xia, Kun Ren, Shunwei Pan, Shaoyuan Li, Feng Liang
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引用次数: 0

摘要

在等离子体系统中,等离子体电离的硫与金属锂反应生成了硫化锂。利用热力学计算和光学发射光谱研究了金属锂在硫等离子体气氛中的化学行为和反应机理。研究了射频功率和射频时间对冷等离子体法制备的硫化锂性能的影响。进一步测试和分析了硫化产物(硫化锂)的宏观形态、微观形态、元素分布和相态。结果表明,在功率≥210 W、时间≥15 min 的条件下,生成了纯度较高的不含 Li2S2 的硫化锂;随着功率的增加,氧化锂转化为硫化锂。随后,测试了其作为电池负极的电化学性能。测试结果表明:充电比容量高达 216.9 mAh/g,放电比容量高达 182.8 mAh/g;阻抗具有双电容抗弧性,在充放电过程中均能正常进行,具有一定的电化学性能。
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Synthesis of Lithium Sulfide by Cold Plasma Method and Its Energy Storage Properties

Lithium sulfide was produced in a plasma system by the reaction of plasma-ionized sulfur with lithium metal. Thermodynamic calculations and optical emission spectroscopy were used to investigate the chemical behavior and reaction mechanism of lithium metal in sulfur plasma atmosphere. The effects of radiofrequency (RF) power and radiofrequency (RF) time on the properties of lithium sulfide prepared by the cold plasma method were investigated. The macroscopic morphology, microscopic morphology, elemental distribution and phase of the sulfide product (lithium sulfide) were further tested and analyzed. The results show that under the conditions of power ≥ 210 W and time ≥ 15 min, Li2S2-free lithium sulfide with high purity is generated; with the enhancement of power, lithium oxide is transformed into lithium sulfide. Subsequently, its electrochemical performance as a battery anode was tested. The test obtained: the specific capacity of charging is up to 216.9 mAh/g, and the specific capacity of discharging is up to 182.8 mAh/g; the impedance has a double capacitance to resist arcing, which can be carried out normally in the charging and discharging process, and it has a certain degree of electrochemical performance.

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来源期刊
JOM
JOM 工程技术-材料科学:综合
CiteScore
4.50
自引率
3.80%
发文量
540
审稿时长
2.8 months
期刊介绍: JOM is a technical journal devoted to exploring the many aspects of materials science and engineering. JOM reports scholarly work that explores the state-of-the-art processing, fabrication, design, and application of metals, ceramics, plastics, composites, and other materials. In pursuing this goal, JOM strives to balance the interests of the laboratory and the marketplace by reporting academic, industrial, and government-sponsored work from around the world.
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