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一种远程可控的 Janus 微马达吸附剂,用于主动修复 Cs 污染水。

A remotely steerable Janus micromotor adsorbent for the active remediation of Cs-contaminated water.

机构信息

Decommissioning Technology Research Division, Korea Atomic Energy Research Institute, Daedeok-daero 989-111, Yuseong-gu, Daejeon, Republic of Korea; Department of Chemical Engineering and Applied Chemistry, College of Engineering, Chungnam National University, 99 Daehak-ro, Yuseong-gu, Daejeon, Republic of Korea.

Decommissioning Technology Research Division, Korea Atomic Energy Research Institute, Daedeok-daero 989-111, Yuseong-gu, Daejeon, Republic of Korea.

出版信息

J Hazard Mater. 2019 May 5;369:416-422. doi: 10.1016/j.jhazmat.2019.02.054. Epub 2019 Feb 14.

Abstract

We report the development of magnetically steerable self-propelled micromotors that selectively remove radioactive Cs from contaminated water. Mesoporous silica microspheres were functionalized with the highly Cs-selective copper ferrocyanide, and half of the adsorptive particle surface was then coated with ferromagnetic Ni and catalytic Pt layers to fabricate Janus micromotors. The micromotor adsorbent displayed random propulsion in an HO solution via catalytic bubble evolution from the Pt surface, and the micromotor adsorbent self-propulsion resulted in an 8-fold higher Cs removal compared to the stationary adsorbent within one hour. The ferromagnetism of the Ni layer allowed the micromotor adsorbent to be magnetically and remotely steerable, and the propulsion speed under a magnetic field was ˜11-fold greater than it was in the absence of the magnetophoretic force. The adsorption of Cs by the self-propelling micromotor adsorbent and the subsequent magnetic recovery of the adsorbent enabled the successful removal of radioactive Cs from aqueous solutions. More than 98% of the radioactive Cs ions were removed from solution, even in the presence of competing ions, such as Na (1000 ppm).

摘要

我们报告了一种可磁控的自推进微马达的开发,该马达可选择性地从污染水中去除放射性 Cs。介孔硅微球用高 Cs 选择性的亚铁氰化铜官能化,然后将吸附颗粒表面的一半用铁磁 Ni 和催化 Pt 层涂覆,以制造 Janus 微马达。微马达吸附剂在 HO 溶液中通过 Pt 表面的催化气泡演化进行随机推进,并且与一小时内的固定吸附剂相比,微马达吸附剂的自推进导致 Cs 的去除率提高了 8 倍。Ni 层的铁磁性允许微马达吸附剂进行磁性和远程可控,并且在磁场下的推进速度比没有磁泳力时高约 11 倍。自推进微马达吸附剂对 Cs 的吸附以及随后对吸附剂的磁性回收,使得从水溶液中成功去除放射性 Cs 成为可能。即使存在竞争离子(如 Na(1000 ppm)),也能从溶液中去除超过 98%的放射性 Cs 离子。

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