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Microwave-assisted selective heating to rapidly construct a nano-cracked hollow sponge for stretch sensing

机译:微波辅助选择性加热,迅速构建纳米裂纹的空心海绵,用于拉伸感测

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Creating various fractured micro- and/or nano-structures in sponge-like conductive networks is a promising strategy for fabricating highly sensitive sensors. However, these structural designs will always involve complicated and time-consuming procedures, which severely hinder the application and development of the as-prepared sensors. Herein, an ultrafast and eco-friendly method assisted by microwave (MW) selective heating was proposed to prepare a highly sensitive sensing material, which facilitated the simultaneous reduction of graphene oxide (GO) and formation of a nano-fractured structure. A three-dimensional (3D) conductive network was first constructed by depositing GO and carbon nanotubes (CNTs) on a melamine (ME) sponge. The structural evolution of this coated GO/CNT@ME sponge during MW irradiation was thoroughly investigated. The uniformly distributed CNT served as the MW absorber, and was selectively and rapidly heated upon exposure to MW irradiation. The formed localized "hot spot" (nano-CNT) induced the degradation of the ME skeleton and thein situreduction of GO, resulting in the construction of a 3D hollow sponge based on micro-fractured backbones covered with nano-voids in just 10 seconds. The final sensor was integrated using this cracked skeleton as the core framework and elastic polydimethylsiloxane (PDMS) as the packaging matrix. Benefitting from this unique multi-level structure, the resultant sensor exhibited an excellent electrical response to mechanical stretching with a wide strain range of 1-50% and a frequency range of 0.05-1 Hz. Besides, these flexible sensors were endowed with good stability and long-term reproducibility over 10 000 cycles. This study also demonstrated the versatile applications of these sensors in distinguishing large- and tiny-scale human motions, including finger bending, pulse beating and vocal vibrations. Thus, this advanced flexible and sensitive sensing material showed great potential in fields of human-machine interaction, health care and wearable devices.
机译:在海绵状导电网络中创造各种裂缝的微缘和/或纳米结构是制造高度敏感传感器的有希望的策略。然而,这些结构设计将始终涉及复杂和耗时的程序,这严重阻碍了所准备的传感器的应用和开发。在此,提出了一种超快和环保方法通过微波(MW)选择性加热以制备高敏感的感测材料,其促进了石墨烯(GO)的同时降低和形成纳米裂缝结构。首先通过在三聚氰胺(ME)海绵上沉积和碳纳米管(CNT)来构建三维(3D)导电网络。彻底调查了MW照射期间该涂层GO / CNT @ ME海绵的结构演变。均匀分布的CNT用作MW吸收剂,并在暴露于MW照射时选择性地迅速加热。所形成的局部的“热点”(Nano-CNT)诱导了ME骨架和GO的骨骼的降解,导致基于仅10秒内的纳米空隙覆盖的微骨折骨架的3D中空海绵的构造。使用该裂化的骨架作为核心框架和弹性聚二甲基硅氧烷(PDMS)整合最终传感器作为包装基质。受益于这种独特的多级结构,所得传感器对机械拉伸表现出优异的电气响应,宽应变范围为1-50%,频率范围为0.05-1Hz。此外,这些柔性传感器具有良好的稳定性和长期再现性超过10 000周期。本研究还证明了这些传感器的多功能应用,以区分大型和微小的人类运动,包括手指弯曲,脉冲跳动和声音振动。因此,这种先进的柔性和敏感的传感材料在人机相互作用,医疗保健和可穿戴设备领域显示出极大的潜力。

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