用于近场无线身体传感器网络的数字刺绣液态金属纺织品

Rongzhou Lin, Han-Joon Kim, Sippanat Achavananthadith, J. S. Ho
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引用次数: 2

摘要

具有电磁功能的衣服可以用来连接一个由人体周围的无电池传感器组成的无线网络。这种智能服装要求纺织品具有高导电性、柔韧性、耐用性,并与现有的制造工艺兼容。在这里,我们展示了用液态金属纤维的数字刺绣制造的具有近场功能的纺织品。由全氟烷氧基烷烃管中的Galinstan组成的液态金属纤维,具有与底层材料相当的机械灵活性和抗机械弯曲的耐久性(在10000次循环中电阻变化<1%),以及在无线电频率(~9.6 Ωm在13.56 MHz)下的高导电性。数字刺绣工艺可以将使用全波电磁模拟优化的近场感应图案转移到传统纺织品上,而不会阻碍水蒸气的传输。我们设计并制造了用于13.56 MHz无线电力传输的液态金属纤维织物皮肤贴片。实验表明,该贴片能够以保形形式附着在人体表面,并在身体活动期间为可穿戴和可植入设备提供强大的无线电力传输(站立和以9.2 km/h的速度运行时的相对标准偏差<1.5%)。这些结果表明,基于液态金属的无线系统有潜力利用近场技术为无电池可穿戴和可植入设备建立强大且不引人注意的无线网络。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Digitally-embroidered Liquid Metal Textiles for Near-field Wireless Body Sensor Networks
Clothing with electromagnetic functionalities can be used to interconnect a wireless network of battery-free sensors around the human body. Such smart clothing require textiles that are highly conductive, flexible, durable, and compatible with established manufacturing processes. Here, we demonstrate textiles with near-field functionalities fabricated by digital embroidery of liquid metal fibers. The liquid metal fibers, consisting of Galinstan in perfluoroalkoxy alkane tubing, exhibit mechanical flexibility comparable to the underlying materials and durability against mechanical bending (<1% electrical resistance variation on 10000 cycles), and high electrical conductance at radio-frequencies (~9.6 Ωm at 13.56 MHz). The digital embroidery process enables transfer of near-field inductive patterns optimized using full-wave electromagnetic simulations onto conventional textiles without blocking water vapour transport. We design and fabricate liquid metal fibers onto fabric skin patches for wireless power transfer at 13.56 MHz. Experiments show that the patches can conformally attach onto the surface of the body and provide robust wireless power transfer to devices in both wearable and implantable configurations during physical activity (<1.5% relative standard deviation during standing and running at 9.2 km/h), These results suggest the potential of liquid-metal based wireless systems to establish robust and unobtrusive wireless networks of battery-free wearable and implantable devices using near-field technologies.
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