副教授
硕士生导师
教师拼音名称:zhangzhonghua
电子邮箱:
所在单位:新能源材料与器件教研室
学历:博士研究生
办公地点:材料学院楼215A
性别:男
联系方式:15092410550
学位:工学博士
职称:副教授
毕业院校:中国科学院大学
学科:材料科学与工程其他专业
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2023-09-15 2023 年度山东省优秀研究生导师
2022-12-30 2022年山东省优秀硕士学位论文指导教师
2022-03-01 2021年度校级先进工作者
2020-06-01 2019年度校级先进工作者
最后更新时间:..
关键字:Lithium sulfur batteries;Doping (additives) - Electrochemical impedance spectroscopy - Electrodes - Heterojunctions - II-VI semiconductors - Iron compounds - Kinetics - Lithium batteries - Oscillators (electronic) - Phase interfaces - Polysulfides - Reaction kinetics - Redox reactions - Sulfur compounds - Zinc sulfide
摘要:Electrode materials with efficient catalyzing capability for polysulfides in lithium sulfur batteries are currently receiving intensive research interest for next-generation portable electronic equipment. Herein, a novel hollow architecture composed of ZnS-FeS heterostructures encapsulated in N-doped carbon is designed for the first time as a high-efficiency catalyst to propel polysulfide redox kinetics, in which the ZnS-FeS heterostructures are mosaiced in the carbon framework through a simple in situ sulfuration process. Kinetic analyses and theoretical calculation verify that the abundant heterojunctions could facilitate electron and ion transfer, strengthen the combination with polysulfides and boost the polysulfide redox reaction kinetics. Ex situ electrochemical impedance spectroscopy (EIS) revealed the excellent interface solid-liquid-solid conversion reaction. Benefiting from the state-of-the-art design, the S@ZnS-FeS@NC electrode shows an outstanding rate capacity (718 mA h g<sup>-1</sup> at 4.0C) and favorable cycling stability (822 mA h g<sup>-1</sup> at 0.2C after 200 cycles). Our approach would be a proof-of-concept design of metal sulfide heterojunctions as an effective sulfur host in improving the polysulfide redox kinetics for lithium sulfur batteries.<br/> This journal is © The Royal Society of Chemistry.
卷号:8
期号:1
是否译文:否