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Unraveling the Nature of Anomalously Fast Energy Storage in T-Nb_2O_5

机译:揭示T-Nb_2O_5中异常快速储能的性质

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摘要

While T-Nb_2O_5 has been frequently reported to display an exceptionally fast rate of Li-ion storage (similar to a capacitor), the detailed mechanism of the energy storage process is yet to be unraveled. Here we report our findings in probing the nature of the ultrafast Li-ion storage in T-Nb_2O_5 using both experimental and computational approaches. Experimentally, we used in operando Raman spectroscopy performed on a well-designed model cell to systematically characterize the dynamic evolution of vibrational band groups of T-Nb_2O_5 upon insertion and extraction of Li ions during repeated cycling. Theoretically, our model shows that Li ions are located at the loosely packed 4g atomic layers and prefer to form bridging coordination with the oxygens in the densely packed 4h atomic layers. The atomic arrangement of T-Nb_2O_5 determines the unique Li-ion diffusion path topologies, which allow direct Li-ion transport between bridging sites with very low steric hindrance. The proposed model was validated by computational and experimental vibrational analyses. A comprehensive comparison between T-Nb_2O_5 and other important intercalation-type Li-ion battery materials reveals the key structural features that lead to the exceptionally fast kinetics of T- Nb_2O_5 and the cruciality of atomic arrangements for designing a new generation of Li-ion conduction and storage materials.
机译:尽管经常报告T-Nb_2O_5显示出非常快的锂离子存储速率(类似于电容器),但尚未阐明能量存储过程的详细机制。在这里,我们报告了我们使用实验和计算方法探测T-Nb_2O_5中超快锂离子存储的性质的发现。在实验上,我们在精心设计的模型电池上进行的拉曼光谱操作中,系统地表征了在重复循环过程中插入和提取Li离子时T-Nb_2O_5振动能带基团的动态演化。从理论上讲,我们的模型表明锂离子位于松散堆积的4g原子层上,并且倾向于与密集堆积的4h原子层中的氧形成桥联配位。 T-Nb_2O_5的原子排列确定了独特的锂离子扩散路径拓扑,该拓扑允许在空间位阻非常低的桥接位点之间直接进行锂离子传输。通过计算和实验振动分析验证了所提出的模型。 T-Nb_2O_5与其他重要的插层型锂离子电池材料的全面比较揭示了导致T-Nb_2O_5异常快速动力学的关键结构特征以及原子排列对于设计新一代锂离子传导的重要性和存储材料。

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  • 来源
    《Journal of the American Chemical Society》 |2017年第20期|7071-7081|共11页
  • 作者单位

    School of Materials Science and Engineering, Center for Innovative Fuel Cell and Battery Technologies, Georgia Institute of Technology, 771 Ferst Drive, Atlanta, Georgia 30332-0245, United States,Laser Dynamics Laboratory, School of Chemistry and Biochemistry, Georgia Institute of Technology, 901 Atlantic Drive, Atlanta, Georgia 30332-0400, United States;

    Department of Chemistry, National Taiwan Normal University, 88, Sec. 4 Ting-Zhou Road, Taipei 11677, Taiwan, R.O.C.;

    Department of Chemistry, National Taiwan Normal University, 88, Sec. 4 Ting-Zhou Road, Taipei 11677, Taiwan, R.O.C.;

    School of Materials Science and Engineering, Center for Innovative Fuel Cell and Battery Technologies, Georgia Institute of Technology, 771 Ferst Drive, Atlanta, Georgia 30332-0245, United States,New Energy Research Institute, School of Environment and Energy, South China University of Technology, Guangzhou 510006, China;

    Laser Dynamics Laboratory, School of Chemistry and Biochemistry, Georgia Institute of Technology, 901 Atlantic Drive, Atlanta, Georgia 30332-0400, United States;

    School of Materials Science and Engineering, Center for Innovative Fuel Cell and Battery Technologies, Georgia Institute of Technology, 771 Ferst Drive, Atlanta, Georgia 30332-0245, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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  • 入库时间 2022-08-18 03:07:59

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