Chen Weiyin, Chen Jinhang, Bets Ksenia V, Salvatierra Rodrigo V, Wyss Kevin M, Gao Guanhui, Choi Chi Hun, Deng Bing, Wang Xin, Li John Tianci, Kittrell Carter, La Nghi, Eddy Lucas, Scotland Phelecia, Cheng Yi, Xu Shichen, Li Bowen, Tomson Mason B, Han Yimo, Yakobson Boris I, Tour James M
Department of Chemistry, Rice University, 6100 Main Street, Houston, TX 77005, USA.
Department of Materials Science and NanoEngineering, Rice University, 6100 Main Street, Houston, TX 77005, USA.
Sci Adv. 2023 Sep 29;9(39):eadh5131. doi: 10.1126/sciadv.adh5131. Epub 2023 Sep 27.
The staggering accumulation of end-of-life lithium-ion batteries (LIBs) and the growing scarcity of battery metal sources have triggered an urgent call for an effective recycling strategy. However, it is challenging to reclaim these metals with both high efficiency and low environmental footprint. We use here a pulsed dc flash Joule heating (FJH) strategy that heats the black mass, the combined anode and cathode, to >2100 kelvin within seconds, leading to ~1000-fold increase in subsequent leaching kinetics. There are high recovery yields of all the battery metals, regardless of their chemistries, using even diluted acids like 0.01 M HCl, thereby lessening the secondary waste stream. The ultrafast high temperature achieves thermal decomposition of the passivated solid electrolyte interphase and valence state reduction of the hard-to-dissolve metal compounds while mitigating diffusional loss of volatile metals. Life cycle analysis versus present recycling methods shows that FJH significantly reduces the environmental footprint of spent LIB processing while turning it into an economically attractive process.
报废锂离子电池(LIBs)的惊人积累以及电池金属来源的日益稀缺,引发了对有效回收策略的迫切需求。然而,要高效且低环境影响地回收这些金属具有挑战性。我们在此采用脉冲直流闪速焦耳加热(FJH)策略,该策略能在数秒内将黑粉(即合并的阳极和阴极)加热至2100开尔文以上,使后续浸出动力学提高约1000倍。使用像0.01 M HCl这样的稀酸,所有电池金属的回收率都很高,无论其化学组成如何,从而减少了二次废物流。超快高温实现了钝化固体电解质界面的热分解以及难溶解金属化合物的价态还原,同时减少了挥发性金属的扩散损失。与现有回收方法的生命周期分析表明,FJH显著降低了废旧LIB处理的环境影响,同时使其成为一个具有经济吸引力的过程。