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Deciphering the structural and kinetic factors in lithium titanate for enhanced performance in Li+/Na+ dual-cation electrolyte

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Deciphering the structural and kinetic factors in lithium titanate for enhanced performance in Li+/Na+ dual-cation electrolyte. / Chen, Y.; Zhang, S.; Zhao, D. et al.
In: Journal of Colloid and Interface Science, Vol. 676, 15.12.2024, p. 603-612.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Chen, Y, Zhang, S, Zhao, D, You, Z, Niu, Y, Zeng, L, Mangayarkarasi, N, Kolosov, OV, Tao, J, Li, J, Lin, Y, Zheng, Y, Zhang, L & Huang, Z 2024, 'Deciphering the structural and kinetic factors in lithium titanate for enhanced performance in Li+/Na+ dual-cation electrolyte', Journal of Colloid and Interface Science, vol. 676, pp. 603-612. https://doi.org/10.1016/j.jcis.2024.07.159

APA

Chen, Y., Zhang, S., Zhao, D., You, Z., Niu, Y., Zeng, L., Mangayarkarasi, N., Kolosov, O. V., Tao, J., Li, J., Lin, Y., Zheng, Y., Zhang, L., & Huang, Z. (2024). Deciphering the structural and kinetic factors in lithium titanate for enhanced performance in Li+/Na+ dual-cation electrolyte. Journal of Colloid and Interface Science, 676, 603-612. https://doi.org/10.1016/j.jcis.2024.07.159

Vancouver

Chen Y, Zhang S, Zhao D, You Z, Niu Y, Zeng L et al. Deciphering the structural and kinetic factors in lithium titanate for enhanced performance in Li+/Na+ dual-cation electrolyte. Journal of Colloid and Interface Science. 2024 Dec 15;676:603-612. Epub 2024 Jul 24. doi: 10.1016/j.jcis.2024.07.159

Author

Chen, Y. ; Zhang, S. ; Zhao, D. et al. / Deciphering the structural and kinetic factors in lithium titanate for enhanced performance in Li+/Na+ dual-cation electrolyte. In: Journal of Colloid and Interface Science. 2024 ; Vol. 676. pp. 603-612.

Bibtex

@article{7944fe618e654078b33fda4ffa84424a,
title = "Deciphering the structural and kinetic factors in lithium titanate for enhanced performance in Li+/Na+ dual-cation electrolyte",
abstract = "The widespread application of Li4Ti5O12 (LTO) anode in lithium-ion batteries has been hindered by its relatively low energy density. In this study, we investigated the capacity enhancement mechanism of LTO anode through the incorporation of Na+ cations in an Li+-based electrolyte (dual-cation electrolyte). LTO thin film electrodes were prepared as conductive additive-free and binder-free model electrodes. Electrochemical performance assessments revealed that the dual-cation electrolyte boosts the reversible capacity of the LTO thin film electrode, attributable to the additional pseudocapacitance and intercalation of Na+ into the LTO lattice. Operando Raman spectroscopy validated the insertion of Li+/Na+ cations into the LTO thin film electrode, and the cation migration kinetics were confirmed by ab initio molecular dynamic (AIMD) simulation and electrochemical impedance spectroscopy, which revealed that the incorporation of Na+ reduces the activation energy of cation diffusion within the LTO lattice and improves the rate performance of LTO thin film electrodes in the dual-cation electrolyte. Furthermore, the interfacial charge transfer resistance in the dual-cation electrolyte, associated with ion de-solvation processes and traversal of the cations in the solid-electrolyte interphase (SEI) layer, are evaluated using the distribution of relaxation time, Fourier transform infrared spectroscopy and X-ray photoelectron spectroscopy. Our approach of performance enhancement using dual-cation electrolytes can be extrapolated to other battery electrodes with sodium/lithium storage capabilities, presenting a novel avenue for the performance enhancement of lithium/sodium-ion batteries.",
author = "Y. Chen and S. Zhang and D. Zhao and Z. You and Y. Niu and L. Zeng and N. Mangayarkarasi and O.V. Kolosov and J. Tao and J. Li and Y. Lin and Y. Zheng and L. Zhang and Z. Huang",
year = "2024",
month = dec,
day = "15",
doi = "10.1016/j.jcis.2024.07.159",
language = "English",
volume = "676",
pages = "603--612",
journal = "Journal of Colloid and Interface Science",
issn = "1095-7103",
publisher = "Academic Press Inc.",

}

RIS

TY - JOUR

T1 - Deciphering the structural and kinetic factors in lithium titanate for enhanced performance in Li+/Na+ dual-cation electrolyte

AU - Chen, Y.

AU - Zhang, S.

AU - Zhao, D.

AU - You, Z.

AU - Niu, Y.

AU - Zeng, L.

AU - Mangayarkarasi, N.

AU - Kolosov, O.V.

AU - Tao, J.

AU - Li, J.

AU - Lin, Y.

AU - Zheng, Y.

AU - Zhang, L.

AU - Huang, Z.

PY - 2024/12/15

Y1 - 2024/12/15

N2 - The widespread application of Li4Ti5O12 (LTO) anode in lithium-ion batteries has been hindered by its relatively low energy density. In this study, we investigated the capacity enhancement mechanism of LTO anode through the incorporation of Na+ cations in an Li+-based electrolyte (dual-cation electrolyte). LTO thin film electrodes were prepared as conductive additive-free and binder-free model electrodes. Electrochemical performance assessments revealed that the dual-cation electrolyte boosts the reversible capacity of the LTO thin film electrode, attributable to the additional pseudocapacitance and intercalation of Na+ into the LTO lattice. Operando Raman spectroscopy validated the insertion of Li+/Na+ cations into the LTO thin film electrode, and the cation migration kinetics were confirmed by ab initio molecular dynamic (AIMD) simulation and electrochemical impedance spectroscopy, which revealed that the incorporation of Na+ reduces the activation energy of cation diffusion within the LTO lattice and improves the rate performance of LTO thin film electrodes in the dual-cation electrolyte. Furthermore, the interfacial charge transfer resistance in the dual-cation electrolyte, associated with ion de-solvation processes and traversal of the cations in the solid-electrolyte interphase (SEI) layer, are evaluated using the distribution of relaxation time, Fourier transform infrared spectroscopy and X-ray photoelectron spectroscopy. Our approach of performance enhancement using dual-cation electrolytes can be extrapolated to other battery electrodes with sodium/lithium storage capabilities, presenting a novel avenue for the performance enhancement of lithium/sodium-ion batteries.

AB - The widespread application of Li4Ti5O12 (LTO) anode in lithium-ion batteries has been hindered by its relatively low energy density. In this study, we investigated the capacity enhancement mechanism of LTO anode through the incorporation of Na+ cations in an Li+-based electrolyte (dual-cation electrolyte). LTO thin film electrodes were prepared as conductive additive-free and binder-free model electrodes. Electrochemical performance assessments revealed that the dual-cation electrolyte boosts the reversible capacity of the LTO thin film electrode, attributable to the additional pseudocapacitance and intercalation of Na+ into the LTO lattice. Operando Raman spectroscopy validated the insertion of Li+/Na+ cations into the LTO thin film electrode, and the cation migration kinetics were confirmed by ab initio molecular dynamic (AIMD) simulation and electrochemical impedance spectroscopy, which revealed that the incorporation of Na+ reduces the activation energy of cation diffusion within the LTO lattice and improves the rate performance of LTO thin film electrodes in the dual-cation electrolyte. Furthermore, the interfacial charge transfer resistance in the dual-cation electrolyte, associated with ion de-solvation processes and traversal of the cations in the solid-electrolyte interphase (SEI) layer, are evaluated using the distribution of relaxation time, Fourier transform infrared spectroscopy and X-ray photoelectron spectroscopy. Our approach of performance enhancement using dual-cation electrolytes can be extrapolated to other battery electrodes with sodium/lithium storage capabilities, presenting a novel avenue for the performance enhancement of lithium/sodium-ion batteries.

U2 - 10.1016/j.jcis.2024.07.159

DO - 10.1016/j.jcis.2024.07.159

M3 - Journal article

VL - 676

SP - 603

EP - 612

JO - Journal of Colloid and Interface Science

JF - Journal of Colloid and Interface Science

SN - 1095-7103

ER -