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Buckled carbon nanotube network thin-film fabricated using chemically swelled elastomer substrates

机译:弯曲的碳纳米管网络薄膜使用化学膨胀的弹性体基材制造

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摘要

We report on the fabrication of buckled carbon nanotube thin-film networks (CNTN) that increases in conductivity with applied tactile pressure. When tactile pressure was applied, the buckled nanotubes collapsed and increased in interconnected density and as a result increased the thin-film conductivity. Unlike conventional methods using mechanically expanded elastomers, we utilize chemically swollen elastomers as the expanded substrate to transfer the CNTN. As the chemical evaporates, it compresses the CNTN causing the thin-film to buckle. The CNTN compression can be controlled by using organic solvents with differing elastomer absorption rates. Our method requires no mechanical instruments and shows in-plane multi-axial uniform strain for the entire substrate surface. Since the buckling was controlled chemically, the buckled CNTN can be produced reliably, furthering the possibility of its application as the active sensing material for highly sensitive tactile pressure sensors.
机译:我们报道了抗粘合碳纳米管薄膜网络(CNTN)的制造,其具有施加触觉压力的导电性增加。 当施加触觉压力时,弯曲的纳米管折叠并以互连的密度增加,并且结果增加了薄膜电导率。 与使用机械膨胀弹性体的常规方法不同,我们利用化学溶胀弹性体作为膨胀基底以转移CNTN。 随着化学品蒸发,它压缩了CNTN,使薄膜缠绕。 可以通过使用具有不同弹性体吸收率的有机溶剂来控制CNTN压缩。 我们的方法不需要机械仪器,并在整个基板表面上显示平面内的多轴均匀应变。 由于化学控制屈曲,因此可以可靠地制造弯曲的CNTN,进一步利用其应用作为高敏感触觉传感器的主动传感材料的可能性。

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