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从主要和次要资源中回收关键原材料的生物技术:研发重点和未来展望。

Biotechnologies for critical raw material recovery from primary and secondary sources: R&D priorities and future perspectives.

机构信息

Department of Civil and Environmental Engineering, University of California at Berkeley, Berkeley, CA 94720, USA; Laboratory of Microbial Ecology and Technology (LabMET), Ghent University, Coupure Links 653, B-9000 Gent, Belgium.

Laboratory of Microbial Ecology and Technology (LabMET), Ghent University, Coupure Links 653, B-9000 Gent, Belgium.

出版信息

N Biotechnol. 2015 Jan 25;32(1):121-7. doi: 10.1016/j.nbt.2013.08.004. Epub 2013 Aug 28.

Abstract

Europe is confronted with an increasing supply risk of critical raw materials. These can be defined as materials of which the risks of supply shortage and their impacts on the economy are higher compared to most of other raw materials. Within the framework of the EU Innovation Partnership on raw materials Initiative, a list of 14 critical materials was defined, including some bulk metals, industrial minerals, the platinum group metals and rare earth elements. To tackle the supply risk challenge, innovation is required with respect to sustainable primary mining, substitution of critical metals, and urban mining. In these three categories, biometallurgy can play a crucial role. Indeed, microbe-metal interactions have been successfully applied on full scale to win materials from primary sources, but are not sufficiently explored for metal recovery or recycling. On the one hand, this article gives an overview of the microbial strategies that are currently applied on full scale for biomining; on the other hand it identifies technologies, currently developed in the laboratory, which have a perspective for large scale metal recovery and the needs and challenges on which bio-metallurgical research should focus to achieve this ambitious goal.

摘要

欧洲正面临着关键原材料供应风险的日益增加。这些材料可以被定义为与大多数其他原材料相比,供应短缺的风险及其对经济的影响更高的材料。在欧盟原材料创新伙伴关系倡议的框架内,确定了包括一些块状金属、工业矿物、铂族金属和稀土元素在内的 14 种关键材料。为了应对供应风险挑战,需要在可持续的主要采矿、关键金属替代和城市采矿方面进行创新。在这三个类别中,生物冶金可以发挥关键作用。事实上,微生物-金属相互作用已成功应用于从主要来源获取材料,但在金属回收或再循环方面的研究还不够充分。一方面,本文概述了目前在生物采矿中大规模应用的微生物策略;另一方面,它确定了目前在实验室中开发的技术,这些技术在大规模金属回收方面具有前景,以及生物冶金研究应关注的需求和挑战,以实现这一雄心勃勃的目标。

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