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:MG METAL; MAGNESIUM; DEPOSITION; BATTERIES; GROWTH
摘要:Rechargeable magnesium (Mg)-metal batteries have brought great expect to overcome the safety and energy density concerns of typical lithium-ion batteries. However, interfacial passivation of the Mg-metal anode impairs the reversible Mg plating/stripping chemistries, resulting in low Coulombic efficiency and large overpotential. In this work, a facile isobutylamine (IBA)-assisted activation strategy has been proposed and the fundamental mechanism has been unveiled in a specific way of evolving active species and forming MgH2-based solid-electrolyte interphase. After introducing IBA into a typical electrolyte of magnesium bis(trifluoromethanesulfonyl) imide (Mg(TFSI)(2)) in diglyme (G2) solvents, electrolyte species of [Mg2 (IBA)(5)](2 ) and protonated amine-based cations of [(IBA)H]( ) have been detected by nuclear magnetic resonance and mass spectra. This not only indicates direct solvation of IBA toward Mg2 but also suggests its ionization, which is central to mitigating the decomposition of G2 and TFSI anions by forming neutrally charged [(IBAH( ))(TFSI-)](0) and other complex ions. A series of experiments, including cryogenic-electron microscopy, D2O titration-mass spectra, and time of flight secondary ion mass spectrometry results, reveal a thin, non-passivated, and MgH2-containing interphase on the Mg-metal anode. Besides, uniform and dendrite-free Mg electrodeposits have been revealed in composite electrolytes. Benefiting from the activation effects of IBA, the composite electrolyte displays superior electrochemical performance (overpotential is approximately 0.16 V versus 2.00 V for conventional electrolyte; Coulombic efficiency is above 90% versus <10% for conventional electrolyte). This work offers a fresh direction to advanced electrolyte design for next-generation rechargeable batteries.(c) 2024 Science Press and Dalian Institute of Chemical Physics, Chinese Academy of Sciences. Published by ELSEVIER B.V. and Science Press. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
卷号:98
期号:-
是否译文:否