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层状粘土微机器人作为自推进式清洁剂,可快速高效去除简易有机磷神经毒剂。

Cloisite Microrobots as Self-Propelling Cleaners for Fast and Efficient Removal of Improvised Organophosphate Nerve Agents.

机构信息

Division of Chemistry & Biological Chemistry, School of Physical and Mathematical Sciences , Nanyang Technological University , 637371 Singapore.

Center for Advanced Functional Nanorobots, Department of Inorganic Chemistry, Faculty of Chemical Technology , University of Chemistry and Technology Prague , Technická 5 , 166 28 Prague 6 , Czech Republic.

出版信息

ACS Appl Mater Interfaces. 2019 Sep 4;11(35):31832-31843. doi: 10.1021/acsami.9b08332. Epub 2019 Aug 21.

Abstract

Naturally available microclays are well-known materials with great adsorption capabilities that are available in nature in megatons quantities. On the contrary, artificial nanostructures are often available at high cost via precision manufacturing. Such precision nanomanufacturing is also typically used for fabrication of self-propelled micromotors and nanomachines. Herein, we utilized naturally available Cloisite microclays to fabricate autonomous self-propelled microrobots and demonstrated their excellent performances in pesticide removal due to their excellent adsorption capability. Six different modified Cloisite microrobots were investigated by sputtering their microclays with platinum (Pt) for the fabrication of platinum-Cloisite (Pt-C) microrobots. The obtained microrobots displayed fast velocities ( > 110 μm/s) with fast and efficient enhanced removal of the pesticide fenitrothion, which is also considered as improvised nerve agent. The fabricated Pt-C microrobots exhibited low cytotoxicity even at high concentrations when incubated with human lung carcinoma epithelial cells, which make them safe for human handling.

摘要

天然存在的微粘土是具有巨大吸附能力的知名材料,在自然界中以百万吨计的数量存在。相比之下,人工纳米结构通常通过精密制造以高价获得。这种精密纳米制造也常用于制造自推进的微马达和纳米机器。在这里,我们利用天然存在的 Cloisite 微粘土来制造自主自推进的微机器人,并展示了它们由于出色的吸附能力而在去除农药方面的出色性能。通过溅射铂 (Pt) 来制备铂-Cloisite (Pt-C) 微机器人,对六种不同改性的 Cloisite 微粘土进行了研究。所得到的微机器人表现出快速的速度 (>110μm/s) 和快速高效地增强去除农药杀螟硫磷的能力,杀螟硫磷也被认为是简易神经毒剂。即使在与人肺癌上皮细胞孵育时浓度较高,所制备的 Pt-C 微机器人也表现出低细胞毒性,使其可安全用于人体处理。

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