University of Wollongong
Browse

Li2TiSiO5: a low potential and large capacity Ti-based anode material for Li-ion batteries

journal contribution
posted on 2024-11-16, 05:17 authored by Jingyuan Liu, Wei Kong PangWei Kong Pang, Tong Zhou, Long Chen, Yonggang Wang, Vanessa PetersonVanessa Peterson, Zhongqin Yang, Zaiping GuoZaiping Guo, Yongyao Xia
To date, anode materials for lithium-ion batteries (LIBs) have been dominated by carbonaceous materials, which have a low intercalation potential but easily allow lithium dendrites to form under high current density, leading to a safety risk. The other anode material, the ''zero-strain'' spinel-structured Li4Ti5O12, with a B1.5 V vs. Li+/Li intercalation potential, exhibits excellent cycling stability and avoids the issues of dendrite growth and Li plating. The low capacity and high voltage of Li4Ti5O12, however, result in low energy density. Herein, we report a new and environmentally friendly anode material, Li2TiSiO5, which delivers a capacity as high as 308 mA h g1 , with a working potential of 0.28 V vs. Li+/Li, and excellent cycling stability. The lithium-storage mechanism of this material is also proposed based on the combination of in situ synchrotron X-ray diffraction, neutron powder diffraction with Fourier density mapping, ex situ X-ray absorption near edge structure analysis, ex situ transmission electron microscopy, and density-functional theory calculations with the projector-augmented-wave formalism. The lithiumstorage mechanism of this material is shown to involve a two-electron (Ti4+/Ti2+ redox) conversion reaction between TiO and Li4SiO4.

Funding

Exploration of Advanced Nanostructures for Sodium-ion Battery Application

Australian Research Council

Find out more...

History

Citation

Liu, J., Pang, W., Zhou, T., Chen, L., Wang, Y., Peterson, V. K., Yang, Z., Guo, Z. & Xia, Y. (2017). Li2TiSiO5: a low potential and large capacity Ti-based anode material for Li-ion batteries. Energy & Environmental Science, 10 (6), 1456-1464.

Journal title

Energy and Environmental Science

Volume

10

Issue

6

Pagination

1456-1464

Language

English

RIS ID

114938

Usage metrics

    Categories

    Keywords

    Exports

    RefWorks
    BibTeX
    Ref. manager
    Endnote
    DataCite
    NLM
    DC