"Gheorghe Asachi" Technical University of Iasi, "Cristofor Simionescu" Faculty of Chemical Engineering and Environmental Protection, Department of Environmental Engineering and Management, 73 Prof. Mangeron Blvd., 700050 Iasi, Romania.
Bioresour Technol. 2022 Jan;344(Pt A):126208. doi: 10.1016/j.biortech.2021.126208. Epub 2021 Oct 26.
The continuous development of technologies involving critical metals, both in Europe and over the world, and geopolitical challenges in areas rich in critical metal sources, imposed increased research efforts to recover them from secondary sources, by eco-efficient processes. Yet, microbes-metal interactions are not sufficiently exploited to recover metals from secondary sources, although they are already used in ore extraction. This review examines and compare strategies and processes involving microorganisms for critical metals recovery, since conventional physico-chemical methods are energy-intensive and often polluting. Two groups of microbial assisted recovery processes are discussed: metal mobilization from metal bearing waste, and selective metal separation from leaching solutions by immobilization on microbial biomass. Because most of the identified microbial technologies are developed on laboratory scale, the increase of biorecovery efficiency is compulsory for enhancing scaling-up potential. Future developments focused on novel microorganisms and high-performance strategies for critical metal recovery by microbial processes are considered.
随着涉及关键金属的技术在欧洲和全球范围内的不断发展,以及关键金属资源丰富地区的地缘政治挑战,人们加大了研究力度,希望通过生态高效的工艺从二次资源中回收这些金属。然而,尽管微生物在矿石提取中已经得到了应用,但微生物与金属的相互作用尚未得到充分利用,无法从二次资源中回收金属。本文综述了涉及微生物从二次资源中回收关键金属的策略和工艺,因为传统的物理化学方法不仅耗能大,而且往往还会造成污染。本文讨论了两组微生物辅助回收工艺:从含金属废物中提取金属,以及通过微生物生物量固定化从浸出液中选择性分离金属。由于大多数已确定的微生物技术都是在实验室规模上开发的,因此必须提高生物回收效率,以增强放大潜力。本文还考虑了未来的发展方向,包括新型微生物和用于通过微生物过程回收关键金属的高性能策略。