青岛科技大学  English 
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教授 博士生导师  
硕士生导师  

教师拼音名称:linjianjian

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入职时间:2018-09-11

所在单位:化学与分子工程学院

学历:博士研究生

办公地点:四方校区第一实验楼216

性别:女

联系方式:19862229511

学位:工学博士

职称:教授

毕业院校:澳大利亚伍伦贡大学

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Metal oxyacid salts -confined pyrolysis towards hierarchical porous metal oxide@carbon (MO@C) composites as lithium -ion battery anodes

关键字:HIGH-PERFORMANCE; VANADIUM-OXIDES; CAPACITY; STORAGE; WO3; INTERCALATION; NANOPARTICLES; NANOSHEETS; NANOTUBES; ELECTRODE

摘要:Transition metal oxides (TMOs) have been thought of potential anodic materials for lithium-ion batteries (LIBs) owing to their intriguing properties. However, the limited conductivity and drastic volume change still hinder their practical applications. Herein, a metal oxyacid salts-confined pyrolysis strategy is proposed to construct hierarchical porous metal oxide@carbon (MO@C, MO = MoO2, V(2)0(5), and WO3) composites for solving the aforementioned problems. A water-evaporation -induced self-assembly mechanism has been put forward for fabricating the M0@polyvinyl pyrrolidone (PVP)@SiO2 precursors. After the following pyrolysis and etching process, small MO nanoparticles can be successfully encapsulated in the hierarchical porous carbon framework. Profiting from the synergistic effect of MO nanoparticles and highly conductive carbon framework, MO@C composites show excellent electrochemical properties. For example, the as -obtained Mo02@C composite exhibits a large discharge capacity (1513.7 mAh"g-1 at 0.1 A.g-I), good rate ability (443.5 mAh"g-1 at 5.0 A.g(-1)), and supernal long-lived stability (669.1 mAh.g(-1) after 1000 cycles at 1.0 kg (-1)). This work will inspire the design of novel anode materials for high-performance LI Bs.

卷号:16

期号:5

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