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具有超宽传感范围的高灵敏多丝纤维应变传感器,用于纺织电子学。

Highly Sensitive Multifilament Fiber Strain Sensors with Ultrabroad Sensing Range for Textile Electronics.

机构信息

School of Electrical and Electronic Engineering , Yonsei University , 50 Yonsei-ro, Seodaemun-Gu, Seoul 03722 , Republic of Korea.

Center for Biomaterials, Biomedical Research Institute , Korea Institute of Science and Technology , Seoul 02792 , Republic of Korea.

出版信息

ACS Nano. 2018 May 22;12(5):4259-4268. doi: 10.1021/acsnano.7b07795. Epub 2018 Apr 6.

Abstract

Highly stretchable fiber strain sensors are one of the most important components for various applications in wearable electronics, electronic textiles, and biomedical electronics. Herein, we present a facile approach for fabricating highly stretchable and sensitive fiber strain sensors by embedding Ag nanoparticles into a stretchable fiber with a multifilament structure. The multifilament structure and Ag-rich shells of the fiber strain sensor enable the sensor to simultaneously achieve both a high sensitivity and largely wide sensing range despite its simple fabrication process and components. The fiber strain sensor simultaneously exhibits ultrahigh gauge factors (∼9.3 × 10 and ∼659 in the first stretching and subsequent stretching, respectively), a very broad strain-sensing range (450 and 200% for the first and subsequent stretching, respectively), and high durability for more than 10 000 stretching cycles. The fiber strain sensors can also be readily integrated into a glove to control a hand robot and effectively applied to monitor the large volume expansion of a balloon and a pig bladder for an artificial bladder system, thereby demonstrating the potential of the fiber strain sensors as candidates for electronic textiles, wearable electronics, and biomedical engineering.

摘要

高拉伸纤维应变传感器是可用于可穿戴电子设备、电子纺织品和生物医学电子设备等各种应用的最重要组件之一。在此,我们提出了一种简便的方法,通过将 Ag 纳米颗粒嵌入具有多丝结构的可拉伸纤维中来制造高拉伸和高灵敏度的纤维应变传感器。尽管纤维应变传感器的制造工艺和组件都很简单,但它的多丝结构和富含 Ag 的外壳使得传感器能够同时实现高灵敏度和大的传感范围。该纤维应变传感器的应变系数非常高(在第一次拉伸和后续拉伸时分别约为 9.3×10 和 659),应变传感范围非常宽(第一次和后续拉伸时分别为 450%和 200%),并且经过超过 10000 次拉伸循环后仍具有高耐用性。纤维应变传感器还可以轻松集成到手套中以控制机械手,并且可以有效地用于监测气球和猪膀胱的大体积膨胀,以用于人工膀胱系统,从而证明了纤维应变传感器作为电子纺织品、可穿戴电子设备和生物医学工程候选材料的潜力。

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