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通过飞秒激光诱导石墨烯在无纺布、针织布和机织布上一步无掩膜图案化实现的多模态电子纺织品。

Multimodal E-Textile Enabled by One-Step Maskless Patterning of Femtosecond-Laser-Induced Graphene on Nonwoven, Knit, and Woven Textiles.

作者信息

Yang Dongwook, Nam Han Ku, Le Truong-Son Dinh, Yeo Jinwook, Lee Younggeun, Kim Young-Ryeul, Kim Seung-Woo, Choi Hak-Jong, Shim Hyung Cheoul, Ryu Seunghwa, Kwon Soongeun, Kim Young-Jin

机构信息

Department of Mechanical Engineering, Korea Advanced Institute of Science and Technology (KAIST), Science Town, Daejeon 34141, South Korea.

Nano-Convergence Manufacturing Systems Research Division, Korea Institute of Machinery & Materials, 156, Gajeongbuk-Ro, Yuseong-Gu, Daejeon 34103, South Korea.

出版信息

ACS Nano. 2023 Oct 10;17(19):18893-18904. doi: 10.1021/acsnano.3c04120. Epub 2023 Aug 29.

Abstract

Personal wearable devices are considered important in advanced healthcare, military, and sports applications. Among them, e-textiles are the best candidates because of their intrinsic conformability without any additional device installation. However, e-textile manufacturing to date has a high process complexity and low design flexibility. Here, we report the direct laser writing of e-textiles by converting raw Kevlar textiles to electrically conductive laser-induced graphene (LIG) via femtosecond laser pulses in ambient air. The resulting LIG has high electrical conductivity and chemical reliability with a low sheet resistance of 2.86 Ω/□. Wearable multimodal e-textile sensors and supercapacitors are realized on different types of Kevlar textiles, including nonwoven, knit, and woven structures, by considering their structural textile characteristics. The nonwoven textile exhibits high mechanical stability, making it suitable for applications in temperature sensors and micro-supercapacitors. On the other hand, the knit textile possesses inherent spring-like stretchability, enabling its use in the fabrication of strain sensors for human motion detection. Additionally, the woven textile offers special sensitive pressure-sensing networks between the warp and weft parts, making it suitable for the fabrication of bending sensors used in detecting human voices. This direct laser synthesis of arbitrarily patterned LIGs from various textile structures could result in the facile realization of wearable electronic sensors and energy storage.

摘要

个人可穿戴设备在先进医疗、军事和体育应用中被认为很重要。其中,电子纺织品是最佳候选者,因为它们具有内在的贴合性,无需额外安装任何设备。然而,迄今为止,电子纺织品制造过程复杂且设计灵活性低。在此,我们报告了通过在环境空气中用飞秒激光脉冲将原始凯夫拉纤维纺织品转化为导电的激光诱导石墨烯(LIG)来直接激光写入电子纺织品。所得的LIG具有高电导率和化学稳定性,方阻低至2.86Ω/□。通过考虑不同类型凯夫拉纤维纺织品(包括无纺布、针织布和机织布结构)的纺织结构特性,在其上实现了可穿戴多模态电子纺织品传感器和超级电容器。无纺布表现出高机械稳定性,使其适用于温度传感器和微型超级电容器应用。另一方面,针织布具有固有的弹簧状拉伸性,使其可用于制造用于人体运动检测的应变传感器。此外,机织布在经纬部分之间提供特殊的灵敏压力传感网络,使其适用于制造用于检测人声的弯曲传感器。这种从各种纺织结构直接激光合成任意图案的LIGs可以轻松实现可穿戴电子传感器和能量存储。

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