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用于主动运输和微组装的具有高速和精确导航功能的近红外光控石墨烯气凝胶微马达

Near-Infrared Light-Steered Graphene Aerogel Micromotor with High Speed and Precise Navigation for Active Transport and Microassembly.

作者信息

Zhou Xiang, Li Zhentao, Tan Lihui, Zhang Yi, Jiao Yanpeng

机构信息

Department of Materials Science and Engineering, Jinan University, Guangzhou 510632, China.

School of Life Science, South China Normal University, Guangzhou 510631, China.

出版信息

ACS Appl Mater Interfaces. 2020 May 20;12(20):23134-23144. doi: 10.1021/acsami.0c04970. Epub 2020 May 6.

Abstract

Fuel-free light-driven micromotors have attracted increasing attention since the advantages of reversible, noninvasive, and remote maneuver are on demand with excellent spatial and temporal resolution. However, they suffer from a challenging bottleneck of the rather modest motion speed, which hinders their applications, needing to overcome the water flow movement in environmental water. Herein, we demonstrate a near-infrared (NIR) light-steered, precise navigation-controlled micromotor based on a reduced graphene oxide aerogel microsphere (RGOAM), which possesses an isotropic structure and is easily prepared by a one-step electrospray approach other than conventional light-propelled micromotors with the Janus structure. Benefiting from the ultralight weight of the aerogel and lesser fluid resistance on the water surface, the RGOAM motors show a higher motion speed (up to 17.60 mm/s) than that in the published literature, letting it overcome counterflow. Taking advantage of the photothermal conversion capacity of the RGOAM under an asymmetric light field, it is capable of moving both on the water driven by the Marangoni effect and under the water via light-manipulated density change. The motion direction and speed on water as well as the "start/stop" state can be precisely steered by NIR light even in a complicated maze. Due to its strong adsorption and loading capacity, the RGOAM can be applied for active loading-transport-release of dyes on demand as well as micropart assembling and shaping. Our work provides a strategy to achieve high speed, precise navigation control, and functional extensibility simultaneously for micromotors, which may offer considerable promise for the broad biomedical and environmental applications.

摘要

由于可逆、无创和远程操控等优点以及出色的空间和时间分辨率受到需求,无燃料光驱动微马达已引起越来越多的关注。然而,它们存在运动速度相当适中这一具有挑战性的瓶颈,这阻碍了它们的应用,因为需要克服环境水中的水流运动。在此,我们展示了一种基于还原氧化石墨烯气凝胶微球(RGOAM)的近红外(NIR)光导向、精确导航控制的微马达,其具有各向同性结构,并且通过一步电喷雾方法很容易制备,不同于具有Janus结构的传统光驱动微马达。受益于气凝胶的超轻重量和水面上较小的流体阻力,RGOAM微马达显示出比已发表文献中更高的运动速度(高达17.60毫米/秒),使其能够克服逆流。利用RGOAM在非对称光场下的光热转换能力,它能够在由马兰戈尼效应驱动的水面上以及通过光操纵密度变化在水下移动。即使在复杂的迷宫中,NIR光也能精确控制其在水面上的运动方向和速度以及“启动/停止”状态。由于其强大的吸附和负载能力,RGOAM可用于按需主动负载 - 运输 - 释放染料以及微部件组装和成型。我们的工作提供了一种同时实现微马达高速、精确导航控制和功能扩展性的策略,这可能为广泛的生物医学和环境应用带来巨大希望。

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