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Visible light–gated reconfigurable rotary actuation of electric nanomotors

机译:可见光门控可重构电动纳米电动机的旋转致动

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摘要

Highly efficient and widely applicable working mechanisms that allow nanomaterials and devices to respond to external stimuli with controlled mechanical motions could make far-reaching impact to reconfigurable, adaptive, and robotic nanodevices. We report an innovative mechanism that allows multifold reconfiguration of mechanical rotation of semiconductor nanoentities in electric (E) fields by visible light stimulation. When illuminated by light in the visible-to-infrared regime, the rotation speed of semiconductor Si nanowires in E-fields can instantly increase, decrease, and even reverse the orientation, depending on the intensity of the applied light and the AC E-field frequency. This multifold rotational reconfiguration is highly efficient, instant, and facile. Switching between different modes can be simply controlled by the light intensity at an AC frequency. We carry out experiments, theoretical analysis, and simulations to understand the underlying principle, which can be attributed to the optically tunable polarization of Si nanowires in an aqueous suspension and an external E-field. Finally, leveraging this newly discovered effect, we successfully differentiate semiconductor and metallic nanoentities in a noncontact and nondestructive manner. This research could inspire a new class of reconfigurable nanoelectromechanical and nanorobotic devices for optical sensing, communication, molecule release, detection, nanoparticle separation, and microfluidic automation.
机译:允许纳米材料和设备以受控的机械运动响应外部刺激的高效且广泛适用的工作机制可能会对可重构,自适应和机器人纳米设备产生深远的影响。我们报告了一种创新的机制,该机制允许通过可见光刺激对电场(E)中的半导体纳米实体进行机械旋转的多重重配置。当用可见光到红外光照射时,根据施加的光强度和交流电场强度,半导体硅纳米线在电场中的旋转速度可以立即增加,减小甚至改变方向。频率。这种多重旋转重新配置是高效,即时且简便的。可以通过AC频率下的光强度简单地控制不同模式之间的切换。我们进行实验,理论分析和模拟以了解基本原理,这可以归因于在水悬浮液和外部电场中Si纳米线的光学可调极化。最后,利用这种新发现的效果,我们以非接触且无损的方式成功地区分了半导体和金属纳米实体。这项研究可能会激发出一类可重构的新型纳米机电和纳米机器人设备,用于光学传感,通信,分子释放,检测,纳米颗粒分离和微流体自动化。

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