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首页> 外文期刊>RSC Advances >Ultra-thin, transparent and flexible tactile sensors based on graphene films with excellent anti-interference
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Ultra-thin, transparent and flexible tactile sensors based on graphene films with excellent anti-interference

机译:基于石墨烯薄膜的超薄,透明和灵活的触觉传感器,具有出色的抗干扰性

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摘要

Tactile sensing, which can reflect the displacement of touch, is considered to be an essential function for electronic skin to mimic natural skin. Here we report a novel tactile sensor with good sensitivity, excellent durability and fast response based on highly flexible and transparent conductor layers. The tactile device is simple in terms of structure consisting of a pair of compliant conductive plates, which were adhered to graphene films (GFs) on the surface layer of the polyethylene terephthalate (PET) substrate, and a transparent elastic adhesive sandwiched between the electrodes. The as-assembled tactile sensors can reflect one-dimensional (1D) touch tactile. And the resistance of the device is linearly related to the tactile of touch. Notably, the rate of resistance change is up to 420% when the displacement is changed by 25 mm. The tactile sensor features a high sensitivity of 0.143 mm?1, a long lifetime of 14?000 cyclic loading tests, and a fast response of 0.3 ms. Furthermore, the electrical signals of the tactile sensors are almost irrelevant to the interference signals such as vertical displacement, stress magnitude, stress acting area and bending strain. This rational design of innovative materials and devices presents great potential for electronic devices to completely replace the unique tough sensing properties of human skin.
机译:可以反映触摸位移的触觉被认为是电子皮肤模仿自然皮肤的基本功能。在这里,我们报告了一种新型触觉传感器,该传感器基于高度柔性和透明的导体层,具有良好的灵敏度,出色的耐用性和快速响应。该触觉装置在结构上很简单,该结构由一对顺应性导电板和一个夹在电极之间的透明弹性粘合剂组成,该对导电板粘附到聚对苯二甲酸乙二醇酯(PET)基材表面层上的石墨烯膜(GFs)上。组装后的触觉传感器可以反映一维(1D)触觉。器件的电阻与触觉线性相关。值得注意的是,当位移改变25 mm时,电阻变化率高达420%。触觉传感器具有0.143 mm ?1 的高灵敏度,14-000次循环负载测试的较长使用寿命,以及0.3 ms的快速响应。此外,触觉传感器的电信号几乎与干扰信号无关,例如垂直位移,应力大小,应力作用面积和弯曲应变。创新性材料和设备的合理设计为电子设备完全替代人类皮肤独特的强硬感测特性提供了巨大潜力。

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