Laboratory of Chemistry and Bioengineering, Tampere University of Technology, P.O. Box 541, FI-33101, Tampere, Finland.
Nat Commun. 2018 Oct 8;9(1):4148. doi: 10.1038/s41467-018-06647-7.
A reconfigurable actuator is a stimuli-responsive structure that can be programmed to adapt different shapes under identical stimulus. Reconfigurable actuators that function without control circuitry and are fueled remotely are in great demand to devise adaptive soft robotic devices. Yet, obtaining fast and reliable reconfiguration remains a grand challenge. Here we report a facile fabrication pathway towards reconfigurability, through synergistic use of photochemical and photothermal responses in light-active liquid crystal polymer networks. We utilize azobenzene photoisomerization to locally control the cis-isomer content and to program the actuator response, while subsequent photothermal stimulus actuates the structure, leading to shape morphing. We demonstrate six different shapes reconfigured from one single actuator under identical illumination conditions, and a light-fueled smart gripper that can be commanded to either grip and release or grip and hold an object after ceasing the illumination. We anticipate this work to enable all-optical control over actuator performance, paving way towards reprogrammable soft micro-robotics.
可重构致动器是一种对刺激做出响应的结构,可以编程使其在相同的刺激下适应不同的形状。无需控制电路且可以远程供能的可重构致动器对于设计自适应软体机器人设备有很大的需求。然而,实现快速可靠的重新配置仍然是一个巨大的挑战。在这里,我们通过协同利用光活性液晶聚合物网络中的光化学和光热响应,报告了一种实现可重构性的简便制造途径。我们利用偶氮苯光异构化来局部控制顺式异构体含量并对致动器响应进行编程,而随后的光热刺激则使结构发生变形,导致形状变形。我们展示了在相同的照明条件下,一个单一的致动器可以重新配置六种不同的形状,以及一个光驱动的智能夹具,在停止照明后,可以被命令夹持和释放或夹持和保持物体。我们预计这项工作将实现对致动器性能的全光学控制,为可编程软体微机器人技术铺平道路。