4.6 Article

Hierarchical Li4Ti5O12-TiO2 composite microsphere consisting of nanocrystals for high power Li-ion batteries

Journal

ELECTROCHIMICA ACTA
Volume 108, Issue -, Pages 104-111

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.electacta.2013.06.073

Keywords

Li-ion batteries; Anode; Li4Ti5O12; TiO2; Hierarchical; Hydrothermal

Funding

  1. Natural Sciences and Engineering Research Council of Canada (NSERC)
  2. University of Waterloo
  3. Waterloo Institute for Nanotechnology

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\ Highly mesoporous lithium titanate hierarchical microspheres (LTO-HS) consisting of nanosized octahedron-like crystals were innovatively designed as high performance and safe anode materials for lithium ion battery applications. This unique structural control allows us to capitalize on the exemplary surface areas (electrolyte contact) and short Li-ion diffusion path lengths of nanosized particles, while overcoming the challenge of low power tapping density by integrating them into microsized spheres. A thin carbon coating was applied on the surface of LTO-HS (C-LTO-HS) in order to overcome the inherently limited electronic conductivity of these oxide materials. Moreover, this coating technique was found to induce the formation of some anatase TiO2, resulting in uniquely structured anode materials with active multi-component duality. Notably, the C-LTO-HS composite electrode delivers a remarkable capacity of over 230 mA hg(-1) when discharged at 0.2 C, which is much higher than the theoretical capacity of pure Li4Ti5O12 (175 mA h g(-1)) and ascribed to the existence of anatase TiO2 (330 mA hg(-1)) in the C-LTO-HS structure. Furthermore, this electrode yielded excellent cycling and rate capabilities of about 120 mA hg(-1) (compared to 90 mA hg(-1) for LTO-HS) at a current density of 10 C for up to 100 cycles. These unique mesoporous spheres with deliberately controlled nanostructure arrangements show significant promise as anode materials for lithium ion batteries, fabricated by a simplistic two step hydrothermal procedures, and capable of providing high volumetric energy density and long cycle life. (C) 2013 Elsevier Ltd. All rights reserved.

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