ELECTROCHEMICAL CHARACTERISTICS OF LiFePO4, RECOVERED AFTER BATTERY DEGRADATION
№4 (English)

Ключові слова

lithium-ion batteries, recovery, lithium iron phosphate, citric acid.

Як цитувати

Shcherbatiuk , I., Bazievskiy , A. ., Panchenko, D., Gorobets , M., Potapenko О., Vavilon К., … Golub О. (2023). ELECTROCHEMICAL CHARACTERISTICS OF LiFePO4, RECOVERED AFTER BATTERY DEGRADATION. Український хімічний журнал, 88(12), 189–198. https://doi.org/10.33609/2708-129X.88.12.2022.189-198

Анотація

Due to the ability of LiFePO4 (LFP) to be charged with large currents, LFP batteries are widely used in household appliances and elect­ric vehicles, so the recycling of spent LFP batteries becomes an urgent need. First, they contain toxic components of electrolyte that cannot be buried in landfills; secondly, the cost of lithium which contains in the electrode material continuously increases, and therefore its return to circulation is profitable and expe­dient. To achieve this goal, much attention is paid to hydrometallurgical processing based on the chemical extraction of Li2CO3 and FePO4 during the regeneration of the electrode material. Here we report on the wet chemistry recycling of used LFP batteries. The main task of the work was to simplify the LiFePO4 regene­ration process by leaching with a solution of citric acid due to the elimination of the stage of isolation of Li2CO3 and FePO4, i.e. without selective separation of the filtrate components. The source of spent LiFePO4 was an industrial lithium iron phosphate battery failed due to an internal short circuit. It was found that using citric acid in the ratio H3Cit:LiFePO4=0.5:1, it is possible to efficiently and quickly separate the electrode material from the aluminum current collector. Further pyrolysis and heat treatment of the citrate solution makes it possible to obtain a high-purity LiFePO4/C composite material without extraneous impurities, except for amorphous carbon, which is formed during the pyrolysis of iron (II) and lithium citrates and the thermal decomposition of the binding material in an inert atmosphere. The specific capacity of the LiFePO4/C composite material recovered by the proposed method (145 mA∙h/g) insignificantly differs from that of commercial analogues. This, in our opinion, indicates good prospects of the lithium-iron phosphate regeneration method proposed in this paper.

https://doi.org/10.33609/2708-129X.88.12.2022.189-198
№4 (English)

Посилання

Larouche F., Tedjar F., Amouzegar K., Houlachi G., Bouchard P., Demopoulos G.P., Zaghib K. Progress and status of hydrome­tallurgical and direct recycling of Li-ion batteries and beyond. Materials. 2020. 13: 801. doi:10.3390/ma13030801

Fan E., Li L., Wang Z., Lin J., Huang Y., Yao Y., Chen R, Wu F. Sustainable recycling technology for Li-ion batteries and beyond: Challenges and future prospects. Chem. Rev. 2020. 120: 7020–7063. doi:10.1021/acs.chemrev.9b00535

Padhi A.K., Nanjundaswamy K.S., Goodenough J.B. Phospho olivines as positive electrode materials for rechargeable lithium batteries. J. Electrochem. Soc. 1997. 144: 1188–1194. doi:10.1149/1.1837571

Kirillov S.A. Electrode materials and electrolytes for high-rate electrochemical energy systems: a review. Theor. Exp. Chem. 2019. 55: 73–95. doi:10.1007/s11237-019-09598-2

Wang M., Liu K., Dutta S., Alessi D.S., Rinklebe J., Ok Y.S., Tsang D.C.W. Recycling of lithium iron phosphate batteries: Status, technologies, challenges, and prospects. Renew. Sustain. Energy Rev. 2022. 163: 112515. doi:10.1016/j.rser.2022.112515

Fatima N., Solangi N., Safdar F., Kumar J. A short overview of recycling and treatment of spent LiFePO 4 battery. North Amer. Acad. Res. 2022. 5: 76–87.

doi:10.5281/zenodo.6970023

Li L., Ge J., Wu F., Chen R., Chen S., Wu B. Recovery of cobalt and lithium from spent lithium ion batteries using organic citric acid as leachant. J. Hazard. Mat. 2010. 176: 288–293 doi:10.1016/j.jhazmat.2009.11.026

Li L., Bian Y., Zhang X., Yao Y., Xue Q., Fan E., Wua F., Chen R. A green and effective room-temperature recycling process of LiFePO 4 cathode materials for lithium-ion batteries. Waste Management. 2019. 85: 437–444. doi:10.1016/j.wasman.2019.01.012

Kumar J., Shen X., Li B., Liu H., Zhao J. Selective recovery of Li and FePO 4 from spent LiFePO 4 cathode scraps by organic acids and the properties of the regenerated LiFePO4. Waste Management. 2020. 113: 32–40.

doi:10.1016/j.wasman.2020.05.046

https://howellenergy.en.made-in-china.com/product/vOjnfzCVlDkq/China-3-2V-200ah-Prismatic-Deep-Cycle-LiFePO4-Rechargeable-Solar-Batteries.html

https://www.nanoshel.com/product/lithium-iron-phosphate-powder

https://www.msesupplies.com/products/ lithi­um-iron-phosphate-lifepo4-powder- 500 g?variant=7127289092

https://en.wikipedia.org/wiki/Iron(II)_citrate.

Creative Commons License

Ця робота ліцензується відповідно до Creative Commons Attribution-NonCommercial 4.0 International License.

Авторське право (c) 2023 Ivan Shcherbatiuk , Andrii Bazievskiy , Danylo Panchenko, Margaryta Gorobets , Оleksandr Potapenko , Кlym Vavilon , Hanna Potapenko , Sviatoslav Kirillov , Viacheslav Zinin , Serhii Dubinevych , Оleksandr Golub

Завантаження

Дані завантаження ще не доступні.