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Self-propelled micromotors for cleaning polluted water

机译:用于清洁污水的自走式微电机

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摘要

We describe the use of catalytically self-propelled microjets (dubbed micromotors) for degrading organic pollutants in water via the Fenton oxidation process. The tubular micromotors are composed of rolled-up functional nanomembranes consisting of Fe/Pt bilayers. The micromotors contain double functionality within their architecture, i.e., the inner Pt for the self-propulsion and the outer Fe for the in situ generation of ferrous ions boosting the remediation of contaminated water.The degradation of organic pollutants takes place in the presence of hydrogen peroxide, which acts as a reagent for the Fenton reaction and as main fuel to propel the micromotors. Factors influencing the efficiency of the Fenton oxidation process, including thickness of the Fe layer, pH, and concentration of hydrogen peroxide, are investigated. The ability of these catalytically self-propelled micromotors to improve intermixing in liquids results in the removal of organic pollutants ca. 12 times faster than when the Fenton oxidation process is carried out without catalytically active micromotors. The enhanced reaction–diffusion provided by micromotors has been theoretically modeled. The synergy between the internal and external functionalities of the micromotors, without the need of further functionalization, results into an enhanced degradation of nonbiodegradable and dangerous organic pollutants at small-scale environments and holds considerable promise for the remediation of contaminated water.
机译:我们描述了通过Fenton氧化过程使用催化自推进式微型喷射器(配音微型发动机)降解水中的有机污染物的方法。管状微电机由由Fe / Pt双层组成的可卷起的功能性纳米膜组成。微型电机在其架构内具有双重功能,即用于自我推进的内部Pt和用于原位生成亚铁离子的外部Fe,从而促进了对污染水的修复。有机污染物的降解发生在氢的存在下过氧化物,它用作芬顿反应的试剂,并作为推动微型电动机的主要燃料。研究了影响Fenton氧化过程效率的因素,包括铁层厚度,pH值和过氧化氢浓度。这些催化自推进微电机改善液体混合的能力导致去除了有机污染物。这比没有催化活性微电机的Fenton氧化过程快12倍。从理论上模拟了微电机提供的增强的反应扩散。微型马达的内部和外部功能之间的协同作用,无需进一步的功能化,可在小规模环境中增强不可生物降解和危险有机污染物的降解,并有望对污染的水进行修复。

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