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Directly embroidered microtubes for fluid transport in wearable applications

机译:直接绣制微管,用于穿戴应用中的流体运输

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摘要

We demonstrate, for the first time, a facile and low-cost approach for integrating highly flexible and stretchable microfluidic channels into textile-based substrates. The integration of the microfluidics is accomplished by means of directly embroidering surface-functionalized micro-tubing in a zigzag/meander pattern and subsequently coating it with an elastomer for irreversible bonding. We show the utility of the embroidered micro-tubing by developing robust and stretchable drug-delivery and electronic devices. Controlled drug-delivery platforms with sustained release are achieved through selected laser ablated openings. We further demonstrate a wearable wireless resonant displacement sensor capable of detecting strains ranging from 0 to 60% with an average sensitivity of 45 kHz per % strain by filling the embroidered tubing with a liquid metal alloy, creating stretchable conductive microfluidics with <0.4 Omega resistance variations at their maximum stretchability (100%). The interconnects can withstand 1500 repeated stretch-and-release cycles at 30% strain with a less than 0.1 Omega change in resistance.
机译:我们首次展示了一种容易和低成本的方法,用于将高度柔性和可伸缩的微流体通道集成到基于纺织基板中。微流体的整合是通过直接刺绣表面官能化的微管,然后用曲折/曲折图案刺绣并随后用弹性体涂覆以进行不可逆键合。我们通过开发稳健和可拉伸的药物输送和电子设备来展示绣花微管的效用。通过选定的激光烧蚀开口实现具有持续释放的受控药物输送平台。我们进一步证明了可穿戴无线谐振位移传感器,其能够通过用液态金属合金填充绣花管,通过填充刺绣管,以45 kHz /%菌株的平均灵敏度检测菌株的可穿戴无线谐振位移传感器。以最大拉伸性(100%)。互连可以承受1500重复的拉伸和释放循环,其抗性小于0.1ω的耐受性。

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