青岛科技大学  English 
李桂村
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教授 博士生导师  
硕士生导师  

教师拼音名称:liguicun

出生日期:1974-05-12

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所在单位:材料学院综合办公室

职务:材料科学与工程学院院长

学历:博士研究生

办公地点:材料楼225房间

性别:男

联系方式:guicunli@qust.edu.cn Tel:13730918070

学位:工学博士

职称:教授

毕业院校:中国海洋大学

学科:

材料物理与化学

曾获荣誉:

2016-01-01 山东省有突出贡献的中青年专家

2012-11-07 山东省第三届优秀研究生指导教师

2011-04-01 青岛拔尖人才

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PVP-induced synergistic engineering of interlayer, self-doping, active surface and vacancies in VS4 for enhancing magnesium ions storage and durability

关键字:PERFORMANCE; DISCHARGE; NANOCOMPOSITES; COMPOSITE; SULFIDE; CATHODE

摘要:Magnesium ions batteries (MIBs) provide great potential for the safety and large-scale energy storage, however, its inherent drawbacks, such as the sluggish kinetics, poor cycling life and lower specific capacities of cathode limit their practical application. Herein, PVP is innovatively incorporated with VS4 and induced synergistic engineering, including the enlarged interchain spacing, V3 self-doping, rich sulfur vacancies and the selectively exposing active surface of (020) facets, which results in the fast kinetics of co-intercalation of Mg2 and MgCl , electrolyte infiltration, more active sites exposure, and the strain/stress relaxation during insertion/extraction process for the high stability of structure. Therefore, this novel design of PVP-VS4 exhibits long-term cycling stability (80% capacity retention at 5000 mA g(-1) after 1500 cycles) and exceptional high-rate capability (140 mAh g(-1) at 50 mA g(-1) with 45 mAh g(-1) at 5000 mA g(-1)). The fast reaction kinetics is further confirmed by galvanostatic intermittent titration technique (GITT) and density functional theory (DFT) computations. In addition, the energy storage mechanism and desirable pseudocapacitive behaviors are elucidated through series of ex situ investigations and pesudocapaticance-like contribution analysis. And PVP-VS4 delivers the higher anti-self-discharge capability cause by PVP incorporation. PVP-induced synergistic engineering opens up a new opportunity for designing a iety of effective intercalation host materials for next-generation energy storage.

卷号:47

期号:wu

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