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TiO2(B)纳米粒子的形态。

The Morphology of TiO2 (B) Nanoparticles.

机构信息

Department of Chemistry, University of Cambridge , Lensfield Road, Cambridge CB2 1EW, United Kingdom.

School of Chemistry, University of St. Andrews , North Haugh, St. Andrews, Fife KY16 9ST, United Kingdom.

出版信息

J Am Chem Soc. 2015 Oct 28;137(42):13612-23. doi: 10.1021/jacs.5b08434. Epub 2015 Oct 14.

Abstract

The morphology of a nanomaterial (geometric shape and dimension) has a significant impact on its physical and chemical properties. It is, therefore, essential to determine the morphology of nanomaterials so as to link shape with performance in specific applications. In practice, structural features with different length scales are encoded in a specific angular range of the X-ray or neutron total scattering pattern of the material. By combining small- and wide-angle scattering (typically X-ray) experiments, the full angular range can be covered, allowing structure to be determined accurately at both the meso- and the nanoscale. In this Article, a comprehensive morphology analysis of lithium-ion battery anode material, TiO2 (B) nanoparticles (described in Ren, Y.; Liu, Z.; Pourpoint, F.; Armstrong, A. R.; Grey, C. P.; Bruce, P. G. Angew. Chem. Int. Ed. 2012, 51, 2164), incorporating structure modeling with small-angle X-ray scattering (SAXS), pair distribution function (PDF), and X-ray powder diffraction (XRPD) techniques, is presented. The particles are oblate-shaped, contracted along the [010] direction, this particular morphology providing a plausible rationale for the excellent electrochemical behavior of these TiO2(B) nanoparticles, while also provides a structural foundation to model the strain-driven distortion induced by lithiation. The work demonstrates the importance of analyzing various structure features at multiple length scales to determine the morphologies of nanomaterials.

摘要

纳米材料的形态(几何形状和尺寸)对其物理和化学性质有重大影响。因此,确定纳米材料的形态对于将形状与特定应用中的性能联系起来至关重要。在实践中,不同尺度的结构特征编码在材料的 X 射线或中子全散射图案的特定角度范围内。通过结合小角和宽角散射(通常是 X 射线)实验,可以覆盖整个角度范围,从而可以在介观和纳米尺度上准确确定结构。在本文中,对锂离子电池阳极材料 TiO2(B)纳米颗粒(Ren,Y.;Liu,Z.;Pourpoint,F.;Armstrong,A. R.;Grey,C. P.;Bruce,P. G. Angew. Chem. Int. Ed. 2012,51,2164)进行了全面的形态分析,结合小角 X 射线散射(SAXS)、配分函数(PDF)和 X 射线粉末衍射(XRPD)技术进行结构建模。这些颗粒呈扁球形,沿[010]方向收缩,这种特殊的形态为这些 TiO2(B)纳米颗粒的优异电化学性能提供了合理的依据,同时也为建模由锂化引起的应变驱动变形提供了结构基础。这项工作表明,分析纳米材料的各种结构特征在多个长度尺度上对于确定其形态非常重要。

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