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Seed-assisted synthesis of highly ordered TiO_2@α-Fe_2O_3 core/shell arrays on carbon textiles for lithium-ion battery applications

机译:在锂离子电池应用的碳纤维织物上种子辅助合成高度有序的TiO_2 @α-Fe_2O_3核/壳阵列

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摘要

Highly ordered TiO_2@α-Fe_2O_3 core/shell arrays on carbon textiles (TFAs) have been fabricated by a stepwise, seed-assisted, hydrothermal approach and further investigated as the anode materials for Li-ion batteries (LIBs). This composite TFA anode exhibits superior high-rate capability and outstanding cycling performance. The specific capacity of the TFAs is much higher than that of pristine carbon textiles (CTs) and TiO_2 nanorod arrays on carbon textiles (TRAs), indicating a positive synergistic effect of the material and structural hybridization on the enhancement of the electrochemical properties. This composite nanostructure not only provides large interfacial area for lithium insertion/ extraction but should also be beneficial in reducing the diffusion pathways for electronic and ionic transport, leading to the improved capacity retention on cycling even at high discharge-charge rates. It is worth emphasizing that the CT substrates also present many potential virtues for LIBs as flexible electronic devices owing to the stretchable, lightweight and biodegradable properties. The fabrication strategy presented here is facile, cost-effective, and scalable, which opens new avenues for the design of optimal composite electrode materials for high performance LIBs.
机译:碳纤维织物(TFA)上高度有序的TiO_2 @α-Fe_2O_3核/壳阵列是通过分步,种子辅助,水热方法制备的,并已进一步研究用作锂离子电池(LIB)的负极材料。这种复合TFA阳极具有出色的高倍率性能和出色的循环性能。 TFA的比容量比原始碳纤维(CT)和TiO_2纳米棒阵列在碳纤维(TRA)上的比容量高得多,表明材料和结构杂化对增强电化学性能具有积极的协同作用。这种复合纳米结构不仅为锂的插入/提取提供了较大的界面面积,而且还应有利于减少电子和离子传输的扩散途径,从而即使在高放电-充电速率下也能提高循环容量。值得强调的是,由于可拉伸,轻巧和可生物降解的特性,CT基板也将LIB用作柔性电子设备具有许多潜在的优点。此处提出的制造策略简便,经济高效且可扩展,这为高性能LIB的最佳复合电极材料设计开辟了新途径。

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  • 来源
    《Energy & environmental science》 |2012年第4期|p.6559-6566|共8页
  • 作者单位

    Divisionof Physicsand Applied Physics, School of Physical and MathematicalSciences, Nanyang Technological University, 637371, Singapore,Energy Research Institute at Nanyang Technological University (ERIANj. 639789, Singapore,School ofPhysics and Electronic Engineering, Xinyang Normal University, Xinyang 464000. P. R. China;

    Divisionof Physicsand Applied Physics, School of Physical and MathematicalSciences, Nanyang Technological University, 637371, Singapore;

    Divisionof Physicsand Applied Physics, School of Physical and MathematicalSciences, Nanyang Technological University, 637371, Singapore;

    Divisionof Physicsand Applied Physics, School of Physical and MathematicalSciences, Nanyang Technological University, 637371, Singapore;

    Divisionof Physicsand Applied Physics, School of Physical and MathematicalSciences, Nanyang Technological University, 637371, Singapore;

    School of Materials Science and Engineering, Nanyang Technological University, 639798, Singapore;

    School of Materials Science and Engineering, Nanyang Technological University, 639798, Singapore;

    Divisionof Physicsand Applied Physics, School of Physical and MathematicalSciences, Nanyang Technological University, 637371, Singapore,Energy Research Institute at Nanyang Technological University (ERIANj. 639789, Singapore;

    Energy Research Institute at Nanyang Technological University (ERIANj. 639789, Singapore;

    Institute for Clean Energy and Advanced Materials, Southwest University, Chongqing 400700, P. R. China,Division ofBioengineering, School ofChemical and Biomedical Engineering, Nanyang Technological University, 637371, Singapore;

    Divisionof Physicsand Applied Physics, School of Physical and MathematicalSciences, Nanyang Technological University, 637371, Singapore,Energy Research Institute at Nanyang Technological University (ERIANj. 639789, Singapore,Departmentof Physics, Facultyof Science, National Universityof Singapore, 117542, Singapore;

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