Fast and Slow Laser-Stimulated Degradation of Mn-Doped Li4Ti5O12

Author:

Nikiforov Aleksey A.ORCID,K. Kuznetsov Dmitrii,Nasara Ralph N.,Govindarajan KaviarasanORCID,Lin Shih-kangORCID,Pelegov Dmitry V.ORCID

Abstract

Lithium titanate (Li4Ti5O12) is a commercial anode material used for high-power and long-lifespan lithium batteries. The key drawback of this material is its low electronic conductivity. Although doping is commonly used to solve this problem, the introduction of dopants also diminished lattice stability. In this work, we studied fast and slow laser-induced degradation processes of single Mn-doped lithium titanate particles and proposed a physicochemical model of their degradation mechanism. We suppose that the preferable route of LTO alteration is the formation of amorphous phases rather than crystalline decomposition products. Our results may be useful for not only developing a nondestructive characterization tool utilizing Raman spectroscopy but also for understanding other degradation processes, including thermal alteration and structural changes caused by the intercalation/deintercalation cycles of lithium ions.

Funder

Russian Science Foundation

Ural Center for Shared Use “Modern nanotechnology” Ural Federal University

Ministry of Science and Higher Education of the Russian Federation

Ministry of Science and Technology (MOST) in Taiwan

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Electrochemistry,Energy Engineering and Power Technology

Reference61 articles.

1. (2020, August 10). Landmarks Timeline. Available online: https://www.acs.org/content/acs/en/education/whatischemistry/landmarks/landmarks-timeline.html.

2. Laser-induced phase changes in olivine FePO4: A warning on characterizing LiFePO4-based cathodes with Raman spectroscopy;J. Raman Spectrosc.,2009

3. Phase stability and homogeneity in undoped and Mn-doped LiFePO4 under laser heating;J. Raman Spectrosc.,2010

4. Raman spectroscopy of carbon-coated LiCoPO4 and LiFePO4 olivines;J. Power Sources,2011

5. Raman study of pure, C-coated and Co-doped LiFePO4: Thermal effect and phase stability upon laser heating;J. Raman Spectrosc.,2011

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