课题基金 / 基金详情

Mineral-Microbe interaction role in concentration and Fractionation of Rare Earth Elements (MM-FREE)

Mineral-Microbe interaction role in concentration and Fractionation of Rare Earth Elements (MM-FREE)
矿物-微生物相互作用在稀土元素浓缩和分馏中的作用(MM-FREE)
批准号:
NE/L002361/1
负责人:
Barbara Palumbo-Roe
金额:
$8.9万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2013
资助国家:
英国
项目状态:
已结题
起止时间:
2013 至 --

项目摘要

项目成果

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中文摘要
翻译
近年来,为了满足新的“绿色”技术,特别是重稀土元素(hree)和有效的资源处理日益增长的需求,对新的稀土元素(REE)资源的需求不断增加,刺激了许多研究。微生物可以在稀土和其他金属的积累、动员和分馏中发挥作用。然而,在稀土开采生命周期中,这种作用还没有完全被理解,特别是在稀土的生物浸出、生物吸附和生物矿化背景下:(1)从低品位矿石中回收稀土;(2)采矿过程中稀土元素释放(连同其他有害健康元素)对环境和人类健康的影响。这些生物地球化学过程是利用生物技术优化从低品位矿床中回收稀土元素的基础,其中微生物生物催化技术被认为是低品位矿床中最有前途的生态友好和有效的技术。此外,虽然与稀土有关的放射性核素对生态和人类健康的潜在威胁是已知的,但由于存在知识空白,降低了对稀土开采和加工影响的环境评估的信心。这些间隙包括:稀土与其他有害元素的相互作用;加工过程中产生的物种形成、迁移和分散;暴露水平;以及对水生和陆生生物以及人类健康的毒理学影响。因此,需要对基础科学进行评价,以定量地描述生物过程和控制地球化学因素在稀土开采、加工、使用和“寿命结束”处置生命周期中的作用。拟议工作的目的是解决这些关键的知识差距并制定研究策略。这将建立对低温下稀土元素行为和分馏的关键生物地球化学控制的机制理解,从原子尺度到场尺度;通过数学建模提供过程量化。将考虑自然和工程(在矿石加工中)REE分馏和富集机制的复杂性。所建议的方法是可靠的,并将确保提供关键信息和定量描述,以处理REE生命周期的各个阶段。该项目汇集了一个多学科团队,他们在提供催化剂资助所需的领域具有专业知识。这些包括:地球微生物学和细胞-矿物相互作用的分子科学、地质学、矿物学和岩石学、环境采矿影响和医学地质学,并得到广泛的实验室专业知识和设施的支持,以调查风化和沉积成岩环境中稀土元素的积累和流动性。这项催化剂赠款将在独特的研究小组与采矿和保健行业之间建立必要的联盟,以确保制定一项研究方案,提供新知识,最大限度地影响技术。由此产生的完整提案将有一个强有力的以科学为主导的框架。这将(1)有助于设计高效、低能耗开发稀土资源的生物技术流程;(2)了解开发稀土资源对环境和人类健康的影响,从而开发适当的缓解技术。
英文摘要
The increased need for new Rare Earth Element (REE) resources, to meet the growing demand from new "green" technologies, particularly heavy Rare Earth Elements (HREEs), and efficient resource processing has stimulated much research in recent years. Microbes can play a role in the accumulation, mobilisation and fractionation of REEs and other metals. However, this role is not fully understood in relation to the REE exploitation life-cycle - specifically, bioleaching, biosorption and biomineralisation of REEs in the context of: (1) REE recovery from low grade ores; and (2) the impact of REE release (together with other elements harmful to health) during mining on the environment and on human health. These bio-geochemical processes are fundamental to optimising REE recovery from low grade ore deposits using biotechnologies, where microbial biocatalysis technologies are regarded as the most promising eco-friendly and efficient technologies for low-grade deposits. Furthermore, although the potential threats to ecology and human health from radionuclides associated with REEs are known, there are knowledge gaps which reduce confidence in environmental assessments of the impacts of REE mining and processing. These gaps include: interactions of REEs with other harmful elements; the resulting speciation, mobility and dispersion during processing; exposure levels; and the toxicological effects on aquatic and terrestrial organisms, and human health. An evaluation of the fundamental science is therefore required to quantitatively describe the role of biological processes and controlling geochemical factors in the REE mining, processing, use and "end-of-life" disposal life-cycle.The aim of the proposed work is to address these key knowledge gaps and develop a research strategy. This will build a mechanistic understanding of the critical bio-geochemical controls on REE behaviours and fractionation at low temperatures, from atomic- to field- scale; provide process quantification through mathematical modelling. The complexity of natural and engineered (in ore-processing) REE fractionation and enrichment mechanisms will be considered. The proposed approach is robust and will ensure the delivery of critical information and quantitative descriptions which address the various phases of REE life-cycle.The project brings together a multidisciplinary team with expertise in the required areas needed to deliver this catalyst grant. These include: geomicrobiology and molecular science of cell-mineral interactions, geology, mineralogy and petrography, environmental mining impact and medical geology, supported by extensive laboratory expertise and facilities to investigate the accumulation and mobility of REEs in weathering and sedimentary diagenetic environments. This catalyst grant will provide the necessary consortium building between unique research teams and the mining and health industry to ensure the development of a research programme which will deliver new knowledge for maximum impact for technology. The resulting full proposal will have a strong science-led framework. This will (1) help design biotechnology processes for efficient, low-energy exploitation of REE resources and (2) develop an understanding of impacts of REE exploitation on the environment and human health so that appropriate mitigation techniques can be developed.
期刊论文(2)
专著(0)
科研奖励(0)
会议论文
USING MICROBES TO RECOVER RARE EARTHS WITH LOW ENVIRONMENTAL IMPACT?
使用微生物回收稀土,对环境影响较小?
DOI: --
发表时间:
期刊: ERES 2014 - 1st Conference on European Rare Earth Resources
影响因子: --
作者: [Palumbo-Roe, B.]
通讯作者: Palumbo-Roe, B.
DOI: --
发表时间:
期刊:
影响因子: --
作者: [Barnett M]
通讯作者: Barnett M
海外基金