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首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >2D Nanomaterials Wrapped Janus Micromotors with Built-in Multiengines for Bubble, Magnetic, and Light Driven Propulsion
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2D Nanomaterials Wrapped Janus Micromotors with Built-in Multiengines for Bubble, Magnetic, and Light Driven Propulsion

机译:2D纳米材料用内置多久发动机包裹Janus Micromotors,用于泡沫,磁性和光驱动推进

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Graphene oxide, graphdyine oxide, and blackphosphorus coated micromotors integrating "three engines" for motion control using different stimuli such as chemical fuel, light, and magnetic fields are described. Micromotors can be massproduced by wrapping gold-sputtered polystyrene microspheres with the 2D nanomaterials, followed by simultaneous assembly of Pt or MnO2 nanoparticles (NPs) as bubble (catalytic)-engines, Fe2O3 NPs as magnetic engines, and quantum dots (QDs) as light engines. The design and composition of micromotors are key to get the desired propulsion performance. In bubble-magnetic and bubble-light mode, a built-in acceleration system allows micromotor speed to be increased up to 3.0 and 1.5 times after application of the magnetic field or light irradiation, respectively. In the bubble-magnetic-light mode, such speed increase can be combined in a single unit for on-demand braking and accelerating systems. Fluid dynamics simulations illustrate that such adaptative behavior and improved propulsion efficiency is produced by a better distribution of the fuel and thus energy propelling the micromotor by activation of the magnetic and/or light engines. The new micromotors described here, which combine multiple engines with functional nanomaterials, hold considerable promise to develop novel nanovehicles with adaptative behavior to perform complex tasks in lab-on-a-chips or dynamic micropatterning applications.
机译:描述了使用不同刺激等化学燃料,光和磁场的聚集用于运动控制的“三发动机”的石墨烯氧化物,石墨烯氧化物和黑磷酸酯涂覆的微量运动器。通过将金溅射的聚苯乙烯微球包裹着具有2D纳米材料的微量运动会,然后同时将Pt或MnO 2纳米颗粒(NPS)同时组装为泡沫(催化) - 作为磁发动机,以及量子点(QDS)作为光引擎。微量运动器的设计和组成是获得所需推进性能的关键。在气泡 - 磁性和气泡光模式下,在施加磁场或光照射后,内置加速度系统允许微量电机速度增加到3.0%和1.5倍。在气泡磁光模式中,这种速度增加可以在单个单元中组合,以便按需制动和加速系统。流体动力学模拟说明这种适应性行为和改进的推进效率是通过更好地分布燃料的产生,从而通过激活磁性和/或灯发动机来引进微电偶的能量。这里描述的新微电阻,其与功能纳米材料组合,具有相当大的承诺,可以在具有适应性行为中开发新的纳米族,以在实验室内或动态的微图案应用中执行复杂任务。

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