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Laser-induced graphene enabled 1D fiber electronics

机译:激光诱导的石墨烯启用了1D纤维电子器件

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Laser-induced graphene (LIG) is a newly-emergent processing strategy for assembling graphene-based structures and devices with low-cost, high-efficiency and high-customizability. However, with the limitation of positioning accuracy, the application of LIG for swift and continuous production of 1D graphene-fiber based electronics is still vacant. Considering the unique 1D geometry with prominent advantages for flexible and wearable devices, in this work, we adventurously proposed and investigated a vertically-oriented laser-sweeping strategy to continuously convert the similar to 16.5 mm diameter polyimide monofilament into freestanding graphene fibers. Based on process-structure-property relationship modulated precisely by varied combinations of lasing power and pulse resolution, the LIG enabled fiber electronics (LIGFE) could simultaneously exhibit small diameter (<20 mm), high strength (56.49 MPa), electrical conductivity (306.45 S/m), gauge sensitivity (5.43), joule-heated temperature (71.3 degrees C), and capacitive performance (0.26 mF/cm(2)). Taking advantage of computer-aided design and manufacture along with the variously excellent properties, we lastly demonstrated the LIGFE as multimodal sensors for liquid sensing, airflow & respiration monitoring, ultrasonic frequency capturing, as well as functional element embedded in polymer composites for varied types of structural health monitoring from manufacturing to failure stages. (C) 2020 Elsevier Ltd. All rights reserved.
机译:激光诱导的石墨烯(LIG)是一种用于组装基于石墨烯的结构和装置的新紧急加工策略,具有低成本,高效率和高分辨率。然而,随着定位精度的限制,Lig对Swift和连续产生的1D石墨烯 - 纤维基电子的应用仍然空置。考虑到具有突出的优点的独特的1D几何,在这项工作中,我们冒险地提出并研究了垂直导向的激光扫描策略,以连续将类似于16.5毫米直径的聚酰亚胺单丝转化为独立的石墨烯纤维。基于过程 - 结构性质关系,精确地通过改变激光功率和脉冲分辨率的组合来调节,LIG使能光纤电气(LIGFE)可以同时表现出小直径(<20mm),高强度(56.49MPa),导电性(306.45 S / m),仪表敏感度(5.43),焦耳加热温度(71.3摄氏度)和电容性能(0.26mF / cm(2))。利用计算机辅助设计和制造以及各种优异的性能,我们最后将LIGFE作为液体传感,气流和呼吸监测,超声波频率捕获,以及嵌入聚合物复合材料的功能元件,用于各种类型的多峰传感器从制造业到失败阶段的结构健康监测。 (c)2020 elestvier有限公司保留所有权利。

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