Echavarri-Bravo Virginia, Amari Houari, Hartley Jennifer, Maddalena Giovanni, Kirk Caroline, Tuijtel Maarten W, Browning Nigel D, Horsfall Louise E
School of Biological Sciences, University of Edinburgh Edinburgh EH9 3FF UK
Faraday Institution (ReLiB project) Quad One Harwell Science and Innovation Campus Didcot UK.
Green Chem. 2022 Oct 17;24(21):8512-8522. doi: 10.1039/d2gc02450k. eCollection 2022 Oct 31.
The large scale recycling of lithium ion batteries (LIBs) is essential to satisfy global demands for the raw materials required to implement this technology as part of a clean energy strategy. However, despite what is rapidly becoming a critical need, an efficient and sustainable recycling process for LIBs has yet to be developed. Biological reactions occur with great selectivity under mild conditions, offering new avenues for the implementation of more environmentally sustainable processes. Here, we demonstrate a sequential process employing two bacterial species to recover Mn, Co and Ni, from vehicular LIBs through the biosynthesis of metallic nanoparticles, whilst Li remains within the leachate. Moreover the feasibility of Mn recovery from polymetallic solutions was demonstrated at semi-pilot scale in a 30 L bioreactor. Additionally, to provide insight into the biological process occurring, we investigated selectivity between Co and Ni using proteomics to identify the biological response and confirm the potential of a bio-based method to separate these two essential metals. Our approach determines the principles and first steps of a practical bio-separation and recovery system, underlining the relevance of harnessing biological specificity for recycling and up-cycling critical materials.
锂离子电池(LIBs)的大规模回收对于满足全球对实施该技术所需原材料的需求至关重要,该技术是清洁能源战略的一部分。然而,尽管这一需求迅速变得至关重要,但高效且可持续的锂离子电池回收工艺尚未开发出来。生物反应在温和条件下具有高度选择性,为实施更具环境可持续性的工艺提供了新途径。在此,我们展示了一个采用两种细菌的顺序过程,通过金属纳米颗粒的生物合成从车辆锂离子电池中回收锰、钴和镍,而锂则留在浸出液中。此外,在30升生物反应器中以半中试规模证明了从多金属溶液中回收锰的可行性。此外,为了深入了解所发生的生物过程,我们使用蛋白质组学研究了钴和镍之间的选择性,以确定生物反应并确认基于生物的方法分离这两种必需金属的潜力。我们的方法确定了实用生物分离和回收系统的原理和初步步骤,强调了利用生物特异性进行关键材料回收和升级循环利用的相关性。