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From the Cover: Conformable flexible large-area networks of pressure and thermal sensors with organic transistor active matrixes

机译:从封面开始:具有有机晶体管有源矩阵的压力热传感器的整合灵活大面积网络

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摘要

Skin-like sensitivity, or the capability to recognize tactile information, will be an essential feature of future generations of robots, enabling them to operate in unstructured environments. Recently developed large-area pressure sensors made with organic transistors have been proposed for electronic artificial skin (E-skin) applications. These sensors are bendable down to a 2-mm radius, a size that is sufficiently small for the fabrication of human-sized robot fingers. Natural human skin, however, is far more complex than the transistor-based imitations demonstrated so far. It performs other functions, including thermal sensing. Furthermore, without conformability, the application of E-skin on three-dimensional surfaces is impossible. In this work, we have successfully developed conformable, flexible, large-area networks of thermal and pressure sensors based on an organic semiconductor. A plastic film with organic transistor-based electronic circuits is processed to form a net-shaped structure, which allows the E-skin films to be extended by 25%. The net-shaped pressure sensor matrix was attached to the surface of an egg, and pressure images were successfully obtained in this configuration. Then, a similar network of thermal sensors was developed with organic semiconductors. Next, the possible implementation of both pressure and thermal sensors on the surfaces is presented, and, by means of laminated sensor networks, the distributions of pressure and temperature are simultaneously obtained.
机译:像皮肤一样的敏感性或识别触觉信息的能力将成为下一代机器人的基本特征,从而使其能够在非结构化环境中运行。已经提出了最近开发的由有机晶体管制成的大面积压力传感器,用于电子人造皮肤(E-skin)应用。这些传感器可弯曲至2mm半径,该尺寸对于制造人类尺寸的机器人手指而言足够小。然而,自然的人类皮肤要比到目前为止展示的基于晶体管的模仿复杂得多。它执行其他功能,包括热感测。此外,如果没有一致性,则无法在三维表面上应用E-皮肤。在这项工作中,我们已经成功地开发了基于有机半导体的顺应性,灵活,大面积的热和压力传感器网络。对带有有机晶体管电子电路的塑料膜进行加工以形成网状结构,从而使E形皮膜扩展25%。将网状压力传感器矩阵附着到鸡蛋的表面,并在此配置下成功获得压力图像。然后,使用有机半导体开发了类似的热传感器网络。接下来,介绍了压力传感器和热传感器在表面上的可能实现方式,并且借助层压传感器网络,同时获得了压力和温度的分布。

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