姜晓滨

个人信息Personal Information

教授

博士生导师

硕士生导师

主要任职:化工学院副院长

其他任职:辽宁省石化行业高效节能分离技术工程实验室副主任

性别:男

毕业院校:天津大学

学位:博士

所在单位:化工学院

学科:化学工程. 膜科学与技术. 水科学与技术

办公地点:大连理工大学西部校区化工实验楼D405

联系方式:Tel:0411-84986291

电子邮箱:xbjiang@dlut.edu.cn

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Fe3O4 quantum dots embedded in porous carbon microspheres for long-life lithium-ion batteries

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论文类型:期刊论文

发表时间:2019-01-01

发表刊物:Materials today Energy

卷号:12

页面范围:269-276

关键字:Carbon; Electric discharges; Electrodes; Ions; Iron oxides; Magnetite; Micelles; Microspheres; Nanocrystals; Porous materials; Semiconductor quantum dots; Textures; Transition metal oxides; Transition metals, Battery; Carbon microspheres; Discharge process; Electrode material; Electrostatic attractions; Fe3O4; Porous carbon microspheres; Uniform dispersions, Lithium-ion batteries

摘要:We report here Fe 3 O 4 quantum dots embedded Fe 3 O 4 @C electrode materials via a facile micelle-colloid template method for pushing forward the Li-ion battery technology. To improve uniform dispersion of Fe 3 O 4 quantum dots (5–10 nm) and create macropores in the carbon matrix, ferric micelle colloids of CTA + X −1 Fe 3+ with chelate adsorption of ferric colloids on CTAB micelle corona by electrostatic attraction has been developed in a resin layer. Thus, nanocrystalline Fe 3 O 4 and graphitic carbon matrix are mutually formed from the same texture during the pyrolysis process, resulting in a tightly tangled carbon-Fe 3 O 4 hybrids. The conformable embedment of Fe 3 O 4 quantum dots in carbon matrix can effectively prevent its loss and alleviate local tension stress for volume variation during change-discharge process. The well structure-designed Fe 3 O 4 @C electrode materials deliver a stable capacity of 601 mA h g −1 at 2 A g −1 even after 800 cycles. This work provides a new strategy for design of transition-metal-oxide based electrode materials for long-life lithium-ion batteries. © 2019 Elsevier Ltd