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Miniaturization effect of electroosmotic self-propulsive microswimmer powered by biofuel cell

机译:生物燃料电池电渗透压微型磨削微型机械的小型化效果

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For future medical microrobotics, we have proposed the concept of the electroosmotic self-propulsive microswimmer powered by biofuel cell. According to the derived theoretical model, its self-propulsion velocity is inversely proportional to the length of the microswimmer, while it is proportional to the open circuit potential generated by the biofuel cell which does not depend on its size. Therefore, under conditions where those mechanisms work, it can be expected that the smaller its microswimmer size, the faster its self-propulsion velocity. Because of its remarkable feature, this concept is considered to be suitable as propulsion mechanisms for future medical microrobots to move inside the human body through the vascular system, including capillaries. We have already proved the mechanisms by observing the several 10 m/s velocity of 100 m prototypes fabricated by the optical photolithography using several photomasks and alignment steps. However, the standard photolithography was not suitable for further miniaturization of prototypes due to its insufficient resolution. In this research, we adopted femtosecond-laser 3D microlithography for multi-materials composing of the conductive polymer composites and nonconductive polymer composite and succeeded in fabricating 10 m prototypes. Then we demonstrated more than 100 m/s velocity of the prototype experimentally and proved its validity of the smaller and faster feature.
机译:对于未来的医学微生物,我们提出了由生物燃料电池供电的电子渗透自推进微温器的概念。根据衍生的理论模型,其自推进速度与微宽度的长度成反比,而它与由生物燃料电池产生的开路电位成比例,这不依赖于其尺寸。因此,在那些机制工作的条件下,可以预期其微篷尺寸越小,其自推进速度越快。由于其显着特征,这种概念被认为是适合作为未来医用微机器的推进机制,通过血管系统在内的人体内部移动,包括毛细管。我们已经通过使用多个光掩模和对准步骤观察由光学光刻制造的100 M个原型的几个10 m / s速度来证明了机制。然而,由于其分辨率不足,标准光刻不适用于原型的进一步小型化。在该研究中,我们采用了用于多种材料组成的飞秒激光3D微光学,用于导电聚合物复合材料和非导电聚合物复合材料,并成功制造10米原型。然后,我们通过实验证明了原型的超过100米/升速度,并证明了其较小和更快的功能的有效性。

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