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首页> 外文期刊>Science Advances >Bend, stretch, and touch: Locating a finger on an actively deformed transparent sensor array
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Bend, stretch, and touch: Locating a finger on an actively deformed transparent sensor array

机译:弯曲,伸展和触摸:将手指放在主动变形的透明传感器阵列上

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The development of bendable, stretchable, and transparent touch sensors is an emerging technological goal in a variety of fields, including electronic skin, wearables, and flexible handheld devices. Although transparent tactile sensors based on metal mesh, carbon nanotubes, and silver nanowires demonstrate operation in bent configurations, we present a technology that extends the operation modes to the sensing of finger proximity including light touch during active bending and even stretching. This is accomplished using stretchable and ionically conductive hydrogel electrodes, which project electric field above the sensor to couple with and sense a finger. The polyacrylamide electrodes are embedded in silicone. These two widely available, low-cost, transparent materials are combined in a three-step manufacturing technique that is amenable to large-area fabrication. The approach is demonstrated using a proof-of-concept 4 × 4 cross-grid sensor array with a 5-mm pitch. The approach of a finger hovering a few centimeters above the array is readily detectable. Light touch produces a localized decrease in capacitance of 15%. The movement of a finger can be followed across the array, and the location of multiple fingers can be detected. Touch is detectable during bending and stretch, an important feature of any wearable device. The capacitive sensor design can be made more or less sensitive to bending by shifting it relative to the neutral axis. Ultimately, the approach is adaptable to the detection of proximity, touch, pressure, and even the conformation of the sensor surface.
机译:可弯曲,可拉伸和透明的触摸传感器的开发是各种领域的新兴技术目标,包括电子皮肤,可穿戴设备和灵活的手持设备。虽然基于金属网格,碳纳米管和银纳米线的透明触觉传感器在弯曲配置中展示操作,但是我们展示了一种技术,该技术将操作模式扩展到手指靠近的感测,包括在主动弯曲期间甚至拉伸期间轻触。这是使用可伸缩和离子导电水凝胶电极完成的,该水凝胶电极将电场投射到传感器上方的电场以加快并感测手指。聚丙烯酰胺电极嵌入有机硅中。这两种广泛可用,低成本,透明材料在三步制造技术中组合在大面积制造中。使用具有5mm间距的概念验证4×4交叉电网传感器阵列来证明该方法。悬停在阵列上方几厘米的手指的方法是易于检测的。光触摸产生15%的电容局部减小。可以在阵列上遵循手指的运动,并且可以检测多个手指的位置。在弯曲和拉伸期间,触摸可检测到任何可穿戴设备的重要特征。通过将其相对于中性轴移位,电容传感器设计可以或多或少地对弯曲进行敏感。最终,该方法适用于检测接近,触摸,压力,甚至传感器表面的构象。

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