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Biomimetic Photo-Actuation: Progress and Challenges

机译:仿生照片驱动:进步和挑战

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Photo-actuation, such as that observed in the reversible sun-tracking movements of heliotropic plants, is produced by a complex, yet elegant series of processes. In the heliotropic leaf movements of the Cornish Mallow, photo-actuation involves the generation, transport and manipulation of chemical signals from a distributed network of sensors in the leaf veins to a specialized osmosis driven actuation region in the leaf stem. It is theorized that such an arrangement is both efficient in terms of materials use and operational energy conversion, as well as being highly robust. We concern ourselves with understanding and mimicking these light driven, chemically controlled actuating systems with the aim of generating intelligent structures which share the properties of efficiency and robustness that are so important to survival in Nature. In this work we present recent progress in mimicking these photo-actuating systems through remote light exposure of a meta-stable state photoacid and the resulting signal and energy transfer through solution to a pH-responsive hydrogel actuator. Reversible actuation strains of 20% were achieved from this arrangement, with modelling then employed to reveal the critical influence hydrogel pK_a has on this result. Although the strong actuation achieved highlights the progress that has been made in replicating the principles of biomimetic photo-actuation, challenges such as photoacid degradation were also revealed. It is anticipated that current work can directly lead to the development of high-performance and low-cost solar-trackers for increased photovoltaic energy capture and to the creation of new types of intelligent structures employing chemical control systems.
机译:照片致动,例如在光晕植物的可逆太阳跟踪运动中观察到的,是由复杂而优雅的一系列过程生产的。在康沃尔锦葵的微晶叶片运动中,光致动涉及从叶静脉的传感器的分布式网络到叶茎中的专门渗透驱动致动区域的产生,运输和操纵化学信号。理论上,这种布置在材料使用和操作能量转换方面都有效,以及高度稳健。我们担心自己的理解和模仿这些光线驱动的化学控制的动力系统,目的是产生智能结构,这些结构分享了对自然生存如此重要的效率和鲁棒性的性质。在这项工作中,我们通过在Meta稳定状态光偶联的远程曝光和通过溶液到PH响应水凝胶致动器的求解信号和能量转移来实现最近的进展。从这种布置中实现了20%的可逆致动菌株,然后采用模型来揭示临界影响水凝胶PK_A对该结果。虽然所取得的强大致动突出了复制仿真光致动的原则,但也揭示了诸如光酸降解等挑战所取得的进展。预计目前的工作可以直接导致高性能和低成本太阳能跟踪器的开发,用于增加光伏能量捕获,并创建采用化学控制系统的新型智能结构。

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