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Zr-doping stabilizes spinel LiMn_(2)O_(4)as a low cost long cycle life cathode for lithium ion batteries 被引量:2
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作者 张祥功 吴伟 +5 位作者 周思思 黄飞 许诗浩 尹良 杨伟 李泓 《Chinese Physics B》 SCIE EI CAS CSCD 2023年第5期554-559,共6页
The present commercial spinel LiMn_(2)O_(4) delivers only 90 m Ah/g–115 m Ah/g,far lower than the theoretical specific capacity.It degrades fast caused by the Jahn–Teller effect,Mn dissolution and related side react... The present commercial spinel LiMn_(2)O_(4) delivers only 90 m Ah/g–115 m Ah/g,far lower than the theoretical specific capacity.It degrades fast caused by the Jahn–Teller effect,Mn dissolution and related side reactions that consume Li inventory.In this work,Zr doping is employed to improve the structural stability and electrochemical performance of spinel LiMn_(2)O_(4).Li_(1.06)Mn_(1.94-x)Zr_xO_4(x=0,0.01,0.02,0.04)have been successfully synthesized by a simple solid-state reaction method and evaluated as cathode for lithium ion batteries(LIB).Li_(1.06)Mn_(1.92)Zr_(0.02)O_4 is superior cathode material with a high capacity of 122 m Ah/g at 1-C rate;long cycle stability,98.39%retention after 100 cycles at 1-C rate,excellent high rate performance 107.1 m Ah/g at 10-C rate,and high temperature performance 97.39%retention after 60 cycles.These are thought to be related to Zr doping effectively stabilizing the spinel LiMn_(2)O_(4),by forming stronger Zr–O bonds in the octahedron,suppressing the Jahn–Teller effect,thus improving electrochemical performance. 展开更多
关键词 lithium battery CATHODE LiMn_(2)O_(4) cycle life
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锂一次应急电池在全海深载人潜水器中的应用分析 被引量:1
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作者 何巍巍 叶聪 +3 位作者 张祥功 张伟 郑鹏 谢飞 《舰船科学技术》 北大核心 2022年第16期180-184,共5页
全海深载人潜水器首次采用锂氟化碳-二氧化锰体系锂一次电池作为应急电池,在紧急情况下,为潜水器提供应急24V供电。本文对全海深载人潜水器应急电池的需求进行了剖析,根据其指标要求,对锂氟化碳-二氧化锰体系锂一次电池的安全性和电性... 全海深载人潜水器首次采用锂氟化碳-二氧化锰体系锂一次电池作为应急电池,在紧急情况下,为潜水器提供应急24V供电。本文对全海深载人潜水器应急电池的需求进行了剖析,根据其指标要求,对锂氟化碳-二氧化锰体系锂一次电池的安全性和电性能进行了相关试验。通过对应急电池在全海深载人潜水器上应用情况的综合分析,验证了其适用性。 展开更多
关键词 全海深载人潜水器 锂一次电池 应急电池
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Structural stability and ion migration of Li_(2)MnO_(3) cathode material under high pressures
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作者 谢泽仁 周思思 +5 位作者 贺贝贝 王欢文 公衍生 金俊 张祥功 汪锐 《Chinese Physics B》 SCIE EI CAS CSCD 2023年第12期449-453,共5页
Some special fields,such as deep-sea exploration,require batteries and their electrode materials to withstand extremely high pressure.As the cathode material has the highest energy density,Li-excess Mn-based materials... Some special fields,such as deep-sea exploration,require batteries and their electrode materials to withstand extremely high pressure.As the cathode material has the highest energy density,Li-excess Mn-based materials are also likely to be utilized in such an environment.However,the effect of pressure on the crystal structure and migration barrier of this kind of material is still not clear at present.Therefore,in this study,we investigate the properties of the matrix material of Li-excess Mn-based material,Li_(2)MnO_(3),under high pressure.The equation of state,bulk modulus,and steady-state volume of Li_(2)MnO_(3) are predicted by the method of first principles calculation.The calculations of unit cells at different pressures reveal that the cell parameters suffer anisotropic compression under high pressure.During compression,Li-O bond is more easily compressed than Mn-O bond.The results from the climbing image nudged elastic band(CINEB)method show that the energy barrier of Li^(+)migration in the lithium layer increases with pressure increasing.Our study can provide useful information for utilizing Li-excess Mn-based materials under high pressure. 展开更多
关键词 lithium-ion battery Li_(2)MnO_(3) high pressure DFT computation
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