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http://dx.doi.org/10.33961/jecst.2021.00899

Effect of Temperature on the Deterioration of Graphite-Based Negative Electrodes during the Prolonged Cycling of Li-ion Batteries  

Yang, Jin Hyeok (Department of Energy Engineering, Konkuk University)
Hwang, Seong Ju (Graduate School of Energy & Environment, Seoul National University of Science & Technology)
Chun, Seung Kyu (Graduate School of Energy & Environment, Seoul National University of Science & Technology)
Kim, Ki Jae (Department of Energy Engineering, Konkuk University)
Publication Information
Journal of Electrochemical Science and Technology / v.13, no.2, 2022 , pp. 208-212 More about this Journal
Abstract
In this paper, we report the effects of temperature on the deterioration of graphite-based negative electrodes during the longterm cycling of lithium-ion batteries (LIBs). After cycling 75 Ah pouch-type LIB full cells at temperatures of 45℃ (45-Cell) and 25℃ (25-Cell) until their end of life, we expected to observe changes in the negative electrode according to the temperature. The thickness of the negative electrode of the cell was greater after cycling; that of the electrode of 45-Cell (144 ㎛) was greater than that of the electrode of 25-Cell (109 ㎛). Cross-sectional scanning electron microscopy analysis confirmed that by-products caused this increase in the thickness of the negative electrode. The by-products that formed on the surface of the negative electrode during cycling increased the surface resistance and decreased the electrical conductivity. Voltage profiles showed that the negative electrode of 25-Cell exhibited an 84.7% retention of the initial capacity, whereas that of 45-Cell showed only a 70.3% retention. The results of this study are expected to be relevant to future analyses of the deterioration characteristics of the negative electrode and battery deterioration mechanisms, and are also expected to provide basic data for advanced battery design.
Keywords
Negative Electrode; Deterioration; LIBs; Temperature Effect; EOL;
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1 Z. Li, A. Khajepour, J. Song, Energy, 2019, 182, 824-839.   DOI
2 K. Li, J. Yan, H. Chen, Q. Wang, Appl, Therm. Eng., 2018, 132, 575-585.   DOI
3 S. Yang, Y. Hua,. D. Qiao, Y.Lian, Y. Pan, Y. He, Electrochimica Acta, 2019, 326.
4 S. Batel, Energy Res. Soc. Sci., 2020, 68, 101544.   DOI
5 K. J. Kim, M. S. Park, J. H. Kim, U. Hwang, N. J. Lee, G. J. Jeong, Y. J. Kim, Chem. Commun., 2012, 48(44), 5455-5457.   DOI
6 D. Ouyang, J. Wng, M. Chen, J. Liu, J. Wang, Int. J. Energy Res., 2020, 44(1), 229-241.   DOI
7 D. Ouyang, J. Weng, M. Chen, J. Wang, J Energy Storage, 2020, 28.
8 M. M. Thackeray, C. Wolverton, E. D. Isaacs, Energy Environ. Sci., 2012, 5(7), 7854-7863.   DOI
9 Y. Hamakawa, Background and Motivation for Thin-Film Solar-Cell Development, Thin-Film Solar Cells, Springer, 2004, 1-14.
10 S. Hwang, M. Batmunkh, M. J. Nine, H. Chung, H. Jeong, Chem. Phys. Chem., 2015, 16(1), 53-65.   DOI
11 K. J. Kim, M. S. Park, Y. J. Kim, J. H. Kim, S. X. Dou, M. Skyllas-Kazacos, J. Mater Chem. A, 2015, 3(33), 16913-16933.   DOI
12 K. J. Kim, Y. J. Kim, J. H. Kim, M. S. Park, Mater. Chem. Phys., 2011, 131(1-2), 547-553.   DOI
13 Y. Yang, S. Bremner, C. Menictas, M. Kay, Renew. Sustain Energy Rev., 2018, 91, 109-125.   DOI
14 G. Liang, V. K. Peterson, K. W. See, Z. Guo, W. K. Pang, J. Mater. Chem. A, 2020, 8(31), 15373-15398.   DOI
15 Y. Saito, M. Shikano, H. Kobayashi, J. Power Sources, 2013, 244, 294-299.   DOI