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解决锂离子电池回收中深共晶溶剂的再利用问题:对溶解机制、金属回收、再生和分解的见解

Addressing the Reuse of Deep Eutectic Solvents in Li-Ion Battery Recycling: Insights into Dissolution Mechanism, Metal Recovery, Regeneration and Decomposition.

作者信息

Svärd Michael, Ma Chunyan, Forsberg Kerstin, Schiavi Pier Giorgio

机构信息

KTH Royal Institute of Technology, Department of Chemical Engineering, Teknikringen 42, SE-10044, Stockholm, Sweden.

Sapienza University of Rome, Department of Chemistry, Piazzale Aldo Moro n.5, 00185, Rome, Italy.

出版信息

ChemSusChem. 2024 Oct 21;17(20):e202400410. doi: 10.1002/cssc.202400410. Epub 2024 Jun 10.

Abstract

Deep eutectic solvents (DESs) have garnered attention in Li-ion battery (LIB) recycling due to their declared eco-friendly attributes and adjustable metal dissolution selectivity, offering a promising avenue for recycling processes. However, DESs currently lack competitiveness compared to mineral acids, commonly used in industrial-scale LIB recycling. Current research primarily focuses on optimizing DES formulation and experimental conditions to maximize metal dissolution yields in standalone leaching experiments. While achieving yields comparable to traditional leaching systems is important, extensive DES reuse is vital for overall recycling feasibility. To achieve this, evaluating the metal dissolution mechanism can assist in estimating DES consumption rates and assessing process makeup stream costs. The selection of appropriate metal recovery and DES regeneration strategies is essential to enable subsequent reuse over multiple cycles. Finally, decomposition of DES components should be avoided throughout the designed recycling process, as by-products can impact leaching efficiency and compromise the safety and environmental friendliness of DES. In this review, these aspects are emphasized with the aim of directing research efforts away from simply pursuing the maximization of metal dissolution efficiency, towards a broader view focusing on the application of DES beyond the laboratory scale.

摘要

深共熔溶剂(DESs)因其宣称的环保特性和可调节的金属溶解选择性,在锂离子电池(LIB)回收领域受到关注,为回收工艺提供了一条有前景的途径。然而,与工业规模LIB回收中常用的无机酸相比,DESs目前缺乏竞争力。当前的研究主要集中在优化DES配方和实验条件,以在单独的浸出实验中最大化金属溶解产率。虽然实现与传统浸出系统相当的产率很重要,但DES的广泛再利用对于整体回收可行性至关重要。为实现这一点,评估金属溶解机制有助于估计DES消耗率并评估工艺补充流成本。选择合适的金属回收和DES再生策略对于实现多个循环的后续再利用至关重要。最后,在整个设计的回收过程中应避免DES成分的分解,因为副产物会影响浸出效率并损害DES的安全性和环境友好性。在这篇综述中,强调了这些方面,目的是引导研究工作从单纯追求金属溶解效率的最大化,转向更广泛的视角,关注DES在实验室规模之外的应用。

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