Chen Hongxu, Zhao Qilong, Wang Yunlong, Mu Shilin, Cui Huanqing, Wang Juan, Kong Tengfei, Du Xuemin
Institute of Biomedical & Health Engineering , Shenzhen Institutes of Advanced Technology (SIAT), Chinese Academy of Sciences (CAS) , Shenzhen 518035 , China.
State Key Laboratory of Supramolecular Structure and Materials, College of Chemistry , Jilin University , Changchun 130012 , China.
ACS Appl Mater Interfaces. 2019 May 1;11(17):15927-15935. doi: 10.1021/acsami.9b03576. Epub 2019 Apr 19.
Micro/nanomotors can effectively convert other forms of energy into mechanical energy, which have been widely used in microscopic fields. However, it is still challenging to integrate the micro/nanomotors to perform complex tasks for broad applications. Herein, a new mode for driving the collective motion behaviors of integrated micro/nanomotors in a liquid by plasmonic heating is reported. The integrated micro/nanomotors, constituted by gold hollow microcone array (AuHMA), are fabricated via colloidal lithography. Owing to the excellent plasmonic-heating property of the AuHMA, the integrated micro/nanomotors can generate vapor bubbles in the liquid as exposure to near-infrared (NIR) irradiation, therefore inducing versatile motions via on/off NIR irradiation. The floating-diving motions are reversible for at least 60 cycles without fatigue. In addition, precise manipulation of the coordinated motion behaviors, including bending, convex, and jellyfish-like floating motions, can be realized by adjusting the irradiated positions of incident NIR light together with the sizes and shapes of AuHMA films. Moreover, the AuHMA film can act as a robust motor to drive a foam craft over 57-folds of its own weight as exposure to NIR irradiation. Our investigation into the NIR-driven AuHMA film provides a facile approach for obtaining integrated micro/nanomotors with controllable collective motions, which holds promise in remotely controlled smart devices and soft robotics in liquids.
微纳马达能够有效地将其他形式的能量转化为机械能,已在微观领域得到广泛应用。然而,将微纳马达集成起来以执行复杂任务用于广泛应用仍具有挑战性。在此,报道了一种通过等离子体加热驱动集成微纳马达在液体中集体运动行为的新模式。由金空心微锥阵列(AuHMA)构成的集成微纳马达通过胶体光刻法制备。由于AuHMA具有优异的等离子体加热特性,集成微纳马达在近红外(NIR)照射下可在液体中产生气泡,从而通过开启/关闭NIR照射诱导多种运动。沉浮运动至少可重复60个循环且无疲劳现象。此外,通过调整入射NIR光的照射位置以及AuHMA薄膜的尺寸和形状,可以实现对包括弯曲、凸起和水母状漂浮运动等协同运动行为的精确操控。而且,AuHMA薄膜在NIR照射下可作为一个强大的马达驱动重量超过自身57倍的泡沫船。我们对NIR驱动的AuHMA薄膜的研究为获得具有可控集体运动的集成微纳马达提供了一种简便方法,这在液体中的远程控制智能设备和软机器人领域具有广阔前景。