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氧化石墨烯水凝胶作为受限区域纳米反应器,用于合成三维石墨烯负载的超精细 TiO 纳米棒纳米复合材料,用于高倍率锂离子电池阳极。

Graphene oxide hydrogel as a restricted-area nanoreactor for synthesis of 3D graphene-supported ultrafine TiO nanorod nanocomposites for high-rate lithium-ion battery anodes.

机构信息

Institute of Chemical Materials, China Academy of Engineering Physics, Mianyang 621900, Sichuan, People's Republic of China. Sichuan Research Center of New Materials, Chengdu 610200, Sichuan, People's Republic of China.

出版信息

Nanotechnology. 2017 Jul 28;28(30):305401. doi: 10.1088/1361-6528/aa77c6. Epub 2017 Jun 7.

Abstract

Three-dimensional graphene-supported TiO nanorod nanocomposites (3D GS-TNR) are prepared using graphene oxide hydrogel as a restricted-area nanoreactor in the hydrothermal process, in which well-distributed TiO nanorods with a width of approximately 5 nm and length of 30 nm are conformally embedded in the 3D interconnected graphene network. The 3D graphene oxide not only works as a restricted-area nanoreactor to constrain the size, distribution and morphology of the TiO; it also work as a highly interconnected conducting network to facilitate electrochemical reactions and maintain good structural integration when the nanocomposites are used as anode materials in lithium-ion batteries. Benefiting from the nanostructure, the 3D GS-TNR nanocomposites show high capacity and excellent long-term cycling capability at high current rates. The 3D GS-TNR composites deliver a high initial charge capacity of 280 mAh g at 0.2 C and maintain a reversible capacity of 115 mAh g, with a capacity retention of 83% at 20 C after 1000 cycles. Meanwhile, compared with that of previously reported TiO-based materials, the 3D GS-TNR nanocomposites show much better performance, including higher capacity, better rate capability and long-term cycling stability.

摘要

三维石墨烯负载 TiO 纳米棒纳米复合材料(3DGS-TNR)是通过水热过程中以氧化石墨烯水凝胶作为受限区域纳米反应器制备的,其中,宽度约为 5nm、长度为 30nm 的 TiO 纳米棒均匀地嵌入在 3D 相互连接的石墨烯网络中。3D 氧化石墨烯不仅作为受限区域纳米反应器来限制 TiO 的尺寸、分布和形态,还作为高度互连的导电网络,促进了电化学反应,并在纳米复合材料用作锂离子电池的阳极材料时保持了良好的结构完整性。得益于纳米结构,3DGS-TNR 纳米复合材料在高电流密度下具有高容量和优异的长期循环性能。3DGS-TNR 复合材料在 0.2C 时具有 280mAhg 的初始充电容量,并在 20C 下经过 1000 次循环后保持 115mAhg 的可逆容量,容量保持率为 83%。同时,与之前报道的 TiO 基材料相比,3DGS-TNR 纳米复合材料表现出更好的性能,包括更高的容量、更好的倍率性能和长期循环稳定性。

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