LAPSE:2023.26884
Published Article

LAPSE:2023.26884
Role of TiO2 Phase Composition Tuned by LiOH on The Electrochemical Performance of Dual-Phase Li4Ti5O12-TiO2 Microrod as an Anode for Lithium-Ion Battery
April 3, 2023
Abstract
In this study, a dual-phase Li4Ti5O12-TiO2 microrod was successfully prepared using a modified hydrothermal method and calcination process. The stoichiometry of LiOH as precursor was varied at mol ratio of 0.9, 1.1, and 1.3, to obtain the appropriate phase composition between TiO2 and Li4Ti5O12. Results show that TiO2 content has an important role in increasing the specific capacity of electrodes. The refinement of X-ray diffraction patterns by Rietveld analysis confirm that increasing the LiOH stoichiometry suppresses the TiO2 phase. In the scanning electron microscopy images, the microrod morphology was formed after calcination with diameter sizes ranging from 142.34 to 260.62 nm and microrod lengths ranging from 5.03−7.37 μm. The 0.9 LiOH sample shows a prominent electrochemical performance with the largest specific capacity of 162.72 mAh/g and 98.75% retention capacity achieved at a rate capability test of 1 C. This finding can be attributed to the appropriate amount of TiO2 that induced the smaller crystallite size, and lower charge transfer resistance, enhancing the lithium-ion insertion/extraction process and faster diffusion kinetics.
In this study, a dual-phase Li4Ti5O12-TiO2 microrod was successfully prepared using a modified hydrothermal method and calcination process. The stoichiometry of LiOH as precursor was varied at mol ratio of 0.9, 1.1, and 1.3, to obtain the appropriate phase composition between TiO2 and Li4Ti5O12. Results show that TiO2 content has an important role in increasing the specific capacity of electrodes. The refinement of X-ray diffraction patterns by Rietveld analysis confirm that increasing the LiOH stoichiometry suppresses the TiO2 phase. In the scanning electron microscopy images, the microrod morphology was formed after calcination with diameter sizes ranging from 142.34 to 260.62 nm and microrod lengths ranging from 5.03−7.37 μm. The 0.9 LiOH sample shows a prominent electrochemical performance with the largest specific capacity of 162.72 mAh/g and 98.75% retention capacity achieved at a rate capability test of 1 C. This finding can be attributed to the appropriate amount of TiO2 that induced the smaller crystallite size, and lower charge transfer resistance, enhancing the lithium-ion insertion/extraction process and faster diffusion kinetics.
Record ID
Keywords
hydrothermal, Li4Ti5O12-TiO2, lithium-ion battery, microrod, TiO2 rutile
Subject
Suggested Citation
Noerochim L, Caesarendra W, Habib A, Widyastuti, Suwarno, Ni’mah YL, Subhan A, Prihandoko B, Kosasih B. Role of TiO2 Phase Composition Tuned by LiOH on The Electrochemical Performance of Dual-Phase Li4Ti5O12-TiO2 Microrod as an Anode for Lithium-Ion Battery. (2023). LAPSE:2023.26884
Author Affiliations
Noerochim L: Department of Materials and Metallurgical Engineering, Sepuluh Nopember Institute of Technology, Surabaya 60111, Indonesia
Caesarendra W: Faculty of Integrated Technologies, Universiti Brunei Darussalam, Jalan Tungku Link BE1410, Brunei Darussalam [ORCID]
Habib A: Department of Materials and Metallurgical Engineering, Sepuluh Nopember Institute of Technology, Surabaya 60111, Indonesia
Widyastuti: Department of Materials and Metallurgical Engineering, Sepuluh Nopember Institute of Technology, Surabaya 60111, Indonesia
Suwarno: Department of Mechanical Engineering, Sepuluh Nopember Institute of Technology, Surabaya 60111, Indonesia
Ni’mah YL: Department of Chemistry, Sepuluh Nopember Institute of Technology, Surabaya 60111, Indonesia
Subhan A: Research Center of Physics, Indonesian Institute of Science, Serpong 15314, Indonesia
Prihandoko B: Research Center of Physics, Indonesian Institute of Science, Serpong 15314, Indonesia
Kosasih B: School of Mechanical, Materials and Mechatronics Engineering, University of Wollongong, Wollongong 2522, Australia
Caesarendra W: Faculty of Integrated Technologies, Universiti Brunei Darussalam, Jalan Tungku Link BE1410, Brunei Darussalam [ORCID]
Habib A: Department of Materials and Metallurgical Engineering, Sepuluh Nopember Institute of Technology, Surabaya 60111, Indonesia
Widyastuti: Department of Materials and Metallurgical Engineering, Sepuluh Nopember Institute of Technology, Surabaya 60111, Indonesia
Suwarno: Department of Mechanical Engineering, Sepuluh Nopember Institute of Technology, Surabaya 60111, Indonesia
Ni’mah YL: Department of Chemistry, Sepuluh Nopember Institute of Technology, Surabaya 60111, Indonesia
Subhan A: Research Center of Physics, Indonesian Institute of Science, Serpong 15314, Indonesia
Prihandoko B: Research Center of Physics, Indonesian Institute of Science, Serpong 15314, Indonesia
Kosasih B: School of Mechanical, Materials and Mechatronics Engineering, University of Wollongong, Wollongong 2522, Australia
Journal Name
Energies
Volume
13
Issue
20
Article Number
E5251
Year
2020
Publication Date
2020-10-09
ISSN
1996-1073
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Original Submission
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PII: en13205251, Publication Type: Journal Article
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LAPSE:2023.26884
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https://doi.org/10.3390/en13205251
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