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Highly Sensitive Tactile Shear Sensor Using Spatially Digitized Contact Electrodes

Eunsuk Choi, Soonhyung Hwang, Yousang Yoon, Hojun Seo, Jusin Lee, Seongoh Yeom, Gunwoo Ryu, Heewon Yang, Sun‐Jin Kim, Onejae Sul, Seung-Beck Lee

Year
2019
Citations
21
Access
Open access

Abstract

In this article, we report on a highly sensitive tactile shear sensor that was able to detect minute levels of shear and surface slip. The sensor consists of a suspended elastomer diaphragm with a top ridge structure, a graphene layer underneath, and a bottom substrate with multiple spatially digitized contact electrodes. When shear is applied to the top ridge structure, it creates torque and deflects the elastomer downwards. Then, the graphene electrode makes contact with the bottom spatially digitized electrodes completing a circuit producing output currents depending on the number of electrodes making contact. The tactile shear sensor was able to detect shear forces as small as 6 μN, detect shear direction, and also distinguish surface friction and roughness differences of shearing objects. We also succeeded in detecting the contact slip motion of a single thread demonstrating possible applications in future robotic fingers and remote surgical tools.

Keywords

ElectrodeShear forceMaterials scienceShear (geology)Tactile sensorElastomerSlip (aerodynamics)Shearing (physics)Surface finishSurface roughness

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