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Article

Optimization of LiNiCoMnO2 Cathode Material Synthesis Using Polyvinyl Alcohol Solution Method for Improved Lithium-Ion Batteries

1
Department of Materials Science & Engineering, Gachon University, Seongnam-si 13120, Republic of Korea
2
Department of Advanced Materials Science & Engineering, Mokpo National University, Muan-gun 58554, Republic of Korea
3
IL SCIENCE Co., Ltd., IL Square, 5 Saemal-ro 5-gil, Songpa-gu, Seoul-si 05808, Republic of Korea
*
Authors to whom correspondence should be addressed.
These authors contributed equally to this work.
Nanomaterials 2024, 14(13), 1096; https://doi.org/10.3390/nano14131096
Submission received: 23 May 2024 / Revised: 23 June 2024 / Accepted: 24 June 2024 / Published: 26 June 2024

Abstract

The growing need for lithium-ion batteries, fueled by the widespread use of electric vehicles (EVs) and portable electronic devices, requires high energy density and safety. The cathode material Li1-x(NiyCozMn1-y-z)O2 (NCM) shows promise, but attaining high efficiency necessitates optimization of both composition and manufacturing methods. Polycrystalline LiNiCoMnO2 powders were synthesized and assessed in this investigation using a polyvinyl alcohol (PVA) solution method. The study examined different synthesis conditions, such as the PVA to metal ions ratio and the molecular weight of PVA, to assess their influence on powder characteristics. Electrochemical analysis indicated that cathode materials synthesized with a relatively high quantity of PVA with a molecular weight of 98,000 exhibited the highest discharge capacity of 170.34 mAh/g and a high lithium-ion diffusion coefficient of 1.19 × 10−9 cm2/s. Moreover, decreasing the PVA content, irrespective of its molecular weight, led to the production of powders with reduced surface areas and increased pore sizes. The adjustments of PVA during synthesis resulted in pre-sintering observed during the synthesis process, which had an impact on the long-term stability of batteries. The electrodes produced from the synthesized powders had a positive impact on the insertion and extraction of Li+ ions, thereby improving the electrochemical performance of the batteries. This study reveals that cathode materials synthesized with a high quantity of PVA with a molecular weight of 98,000 exhibited the highest discharge capacity of 170.34 mAh/g and a high lithium-ion diffusion coefficient of 1.19 × 10−9 cm2/s. The findings underscore the significance of optimizing methods for synthesizing PVA-based materials to enhance the electrochemical properties of NCM cathode materials, contributing to the advancement of lithium-ion battery technology. The findings underscore the significance of optimizing methods for synthesizing PVA-based materials and their influence on the electrochemical properties of NCM cathode materials. This contributes to the continuous progress in lithium-ion battery technology.
Keywords: battery; cathode; lithium-ion battery; Ni-rich; synthesis battery; cathode; lithium-ion battery; Ni-rich; synthesis

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MDPI and ACS Style

Kang, H.E.; Park, T.M.; Song, S.G.; Yoon, Y.S.; Lee, S.J. Optimization of LiNiCoMnO2 Cathode Material Synthesis Using Polyvinyl Alcohol Solution Method for Improved Lithium-Ion Batteries. Nanomaterials 2024, 14, 1096. https://doi.org/10.3390/nano14131096

AMA Style

Kang HE, Park TM, Song SG, Yoon YS, Lee SJ. Optimization of LiNiCoMnO2 Cathode Material Synthesis Using Polyvinyl Alcohol Solution Method for Improved Lithium-Ion Batteries. Nanomaterials. 2024; 14(13):1096. https://doi.org/10.3390/nano14131096

Chicago/Turabian Style

Kang, Ha Eun, Tae Min Park, Sung Geun Song, Young Soo Yoon, and Sang Jin Lee. 2024. "Optimization of LiNiCoMnO2 Cathode Material Synthesis Using Polyvinyl Alcohol Solution Method for Improved Lithium-Ion Batteries" Nanomaterials 14, no. 13: 1096. https://doi.org/10.3390/nano14131096

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