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Light-Operated Dual-Mode Propulsion at the Liquid/Air Interface Using Flexible, Superhydrophobic, and Thermally Stable Photothermal Paper

机译:使用柔性,超疏水和热稳定的光热纸液/空气界面处的光操作双模推进

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摘要

The direct transformation of external energy into mechanical work by the self-propelled motor inspires and promotes the development of miniaturized machines. Several strategies have been utilized to realize the self-driven motion, but in some cases multiple power sources are needed, and this would complicate the operation in diverse environments. In this regard, the dual-mode self-propelled system based on a single power source is highly desirable. In this work, single-light-actuated dual-mode propulsion at the liquid/air interface is realized by using flexible, superhydrophobic, and thermostable photothermal paper made from flexible ultralong hydroxyapatite nanowires, titanium sesquioxide (Ti2O3) particles, and poly(dimethylsiloxane) coating. The superhydrophobic surface enables the thermostable photothermal paper to float on the water surface spontaneously and significantly reduces the drag force. In the usual situation, the heat power produced by the photothermal effect is utilized to trigger the Marangoni propulsion. While the Marangoni effect is quenched in water containing the surfactant, the propulsion mode can be directly switched into the vapor-enabled propulsion mode by simply increasing the light power density. Particularly, the light-driven motion in a linear, curvilinear, or rotational manner can be realized by designing the self-propelled machines with appropriate shapes by using the processable photothermal paper. It is expected that the as-prepared dual-mode self-propelled, flexible, superhydrophobic, and thermostable photothermal paper-based devices have promising applications in various fields such as microrobots, biomedicine, and environmental monitoring.
机译:外部推进电机的外部能量直接转化为机械工作的启发,促进了小型机器的开发。已经利用了几种策略来实现自动运动,但在某些情况下,需要多种电源,这将使多种环境中的操作复杂化。在这方面,基于单个电源的双模自推进系统是非常理想的。在这项工作中,通过使用由柔性超羟基磷灰石纳米线,硫氧化钛(Ti2O3)颗粒制成的柔性,超疏水和热稳定的光热纸,实现液体/空气界面处的单光驱动的双模推进。和聚(二甲基硅氧烷)涂层。超疏水表面使热稳定的光热纸能够自发地漂浮在水面上,并显着降低阻力。在通常的情况下,利用光热效应产生的热功率来引发Marangoni推进。虽然Marangoni效应在含有表面活性剂的水中淬灭,但是通过简单地增加光功率密度,可以直接切换到蒸汽的推动模式中。特别地,通过使用可加工的光热纸,可以通过设计具有适当形状的自推进机器的线性,曲线或旋转方式的光驱动运动。预期,基于各种领域的诸如MicrooroObots,生物医学和环境监测等各种领域,预计的AS制备的双模是自推进,柔性,超疏水性和热稳定的光热纸体的装置具有有前途的应用。

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