生物信号
材料科学
触觉传感器
晶体管
有源矩阵
传感器
接近传感器
共形矩阵
动态范围
纳米技术
光电子学
声学
电压
薄膜晶体管
电气工程
计算机科学
人工智能
电信
无线
图层(电子)
物理
复合材料
工程类
操作系统
机器人
计算机视觉
作者
Esther Karner‐Petritz,Andreas Petritz,Takafumi Uemura,Naoko Namba,Takeo Araki,Tsuyoshi Sekitani,Barbara Stadlober
标识
DOI:10.1002/aelm.202201333
摘要
Abstract Flexible sensors are currently the subject of intensive research, as they allow cost‐effective and environmentally friendly production of large‐area, flexible, and when fabricated on ultrathin substrates, highly conformable devices. Among many intriguing applications, tactile and biosignal monitoring, where lightweight sensors with high wearing comfort are particularly interesting, is focused on here. The required spatiotemporal resolution of the signals is achieved by integrating the sensors in an active matrix configuration. Organic ferroelectric transducers of high uniformity, characterized, for example, by a sensitivity spread of only 1.5%, are combined with similarly uniform ultralow noise level organic thin film transistors operating below 5 V, showing, for example, a threshold voltage variation of just 0.13 V, in a 12 × 12 sensor array. The transistors transition frequency of up to 160 kHz (saturation range) and 17 kHz (linear range) allows for a high spatiotemporal resolution of ≈3 mm at a frame rate of 1400 fps. The thickness of only 2.8 µm renders the organic active matrix sensor sheet ultraflexible and therefore virtually imperceptible on the human skin. Real‐time monitoring of tactile modes in a subset of 8 × 3 pixels and of the pulse wave including heart rate and blood pressure using four sensors of the matrix is demonstrated.
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