高温熔盐介导三元富镍阴极的深度再生和再结晶

Peng Yuan , Tao Zhang , Zuoyu Qin , Yuanhang Gao , Xiang Long , Zuosu Qin , Ning Zhang , Chuankun Jia , Gen Chen
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引用次数: 0

摘要

在碳中和的框架下,随着绿色清洁能源的日益普及,锂离子电池正逐步蓬勃发展。然而,有限寿命的锂电池的广泛应用带来了重大的回收困境。传统的湿法冶金或火法冶金策略无法最大限度地提高废lib的产值,并将潜在的环境危害降到最低。为此,为了替代繁琐且污染严重的处理工艺,我们提出了一种高温熔盐策略来直接再生锂离子电池的废阴极,该策略也可以克服以往低温熔盐修复不完全缺陷的障碍。高能稳定的介质环境保证了还原反应更加彻底和高效,同时也为原子重排和晶粒二次生长提供了充足的动力。因此,再生三元阴极(R-NCM)具有显著增强的结构稳定性,有效地抑制了裂纹和有害副反应的发生。R-NCM具有优异的循环稳定性,在摄氏温度下循环200次后仍能保持81.2%的容量。该技术进一步优化了传统的共晶熔盐方法,拓宽了其适用性,并在更广泛的条件下提高了再生阴极的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

High temperature molten salts mediated deep regeneration and recrystallization of ternary nickle-rich cathodes

High temperature molten salts mediated deep regeneration and recrystallization of ternary nickle-rich cathodes
Within the framework of carbon neutrality, lithium-ion batteries (LIBs) are progressively booming along with the growing utilization of green and clean energy. However, the extensive application of LIBs with limited lifespan has brought about a significant recycling dilemma. The traditional hydrometallurgical or pyrometallurgical strategies are not capable to maximize the output value of spent LIBs and minimize the potential environmental hazards. Herein, to alternate the tedious and polluting treatment processes, we propose a high-temperature molten-salt strategy to directly regenerate spent cathodes of LIBs, which can also overcome the barrier of the incomplete defects' restoration with previous low-temperature molten salts. The high-energy and stable medium environment ensures a more thorough and efficient relithiation reaction, and simultaneously provides sufficient driving force for atomic rearrangement and grains secondary growth. In consequence, the regenerated ternary cathode (R-NCM) exhibits significantly enhanced structural stability that effectively suppresses the occurrence of cracks and harmful side reactions. The R-NCM delivers excellent cycling stability, retaining 81.2% of its capacity after 200 cycles at 1 C. This technique further optimizes the traditional eutectic molten-salt approach, broadening its applicability and improving regenerated cathode performance across a wider range of conditions.
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CiteScore
33.30
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