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Microbial reduction of natural Fe(III) minerals; towards the sustainable production of functional magnetic nanoparticles

机译:微生物还原天然Fe(III)矿物;走向功能性磁性纳米粒子的可持续生产

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The microbial synthesis of biominerals offers a potentially sustainable green solution for the production of a wide range of industrially relevant functional nanomaterials. Metal-reducing bacteria are of particular relevance, as they can enzymatically reduce a wide spectrum of high oxidation state metals and metalloids, forming cell-templated nanomagnets, catalysts, remediation agents and quantum dots. Although these bioprocesses have been shown to be both scalable and tunable (with respect to particle size, reactivity, magnetic properties and light emitting properties), they have yet to be taken up by industry. Here, we show that naturally abundant Fe(III) minerals are appropriate raw materials for the production of magnetic Fe(II)-bearing nanoparticles by the subsurface bacterium Geobacter sulfurreducens, and these bionanomaterials have the potential for remediation applications (here confirmed by the efficient reduction of toxic, mobile Cr(VI) to less toxic and soluble Cr(III)). Detailed molecular-scale characterization of the bioreduced nanominerals, alongside life cycle assessments and life cycle costings, confirm the efficient production of highly reactive and magnetic nanomaterials from waste materials. This adds further weight to the adoption of microbial technologies for sustainable, functional nanomaterials in a circular economy.
机译:生物矿物的微生物合成为广泛的工业相关功能纳米材料的生产提供了潜在的可持续绿色解决方案。减少金属的细菌特别重要,因为它们可以酶促地还原各种高氧化态金属和准金属,从而形成细胞模板的纳米磁铁,催化剂,修复剂和量子点。尽管这些生物过程已显示出可扩展性和可调性(就粒度,反应性,磁性和发光性质而言),但它们尚未被工业所采用。在这里,我们显示出天然丰富的Fe(III)矿物是通过地下细菌Geobacter sulfreducens生产磁性Fe(II)纳米颗粒的合适原料,并且这些双离子纳米材料具有修复应用的潜力(此处通过有效的方法得到证实)将有毒的移动Cr(VI)还原为毒性较小和可溶的Cr(III))。生物还原纳米矿物的详细分子规模表征,以及生命周期评估和生命周期成本,证实了由废料有效生产高反应性和磁性纳米材料。这进一步增加了微生物技术在循环经济中对可持续的功能纳米材料的采用。

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