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Compressible and Electrically Conducting Fibers for Large-Area Sensing of Pressures

机译:用于大面积压力传感的可压缩导电纤维

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Flexible pressure sensors offer a wide application range in health monitoring and human-machine interaction. However, their implementation in functional textiles and wearable electronics is limited because existing devices are usually small, 0D elements, and pressure localization is only achieved through arrays of numerous sensors. Fiber-based solutions are easier to integrate and electrically address, yet still suffer from limited performance and functionality. An asymmetric cross-sectional design of compressible multimaterial fibers is demonstrated for the detection, quantification, and localization of kPa-scale pressures over m(2)-size surfaces. The scalable thermal drawing technique is employed to coprocess polymer composite electrodes within a soft thermoplastic elastomer support into long fibers with customizable architectures. Thanks to advanced mechanical analysis, the fiber microstructure can be tailored to respond in a predictable and reversible fashion to different pressure ranges and locations. The functionalization of large, flexible surfaces with the 1D sensors is demonstrated by measuring pressures on a gymnastic mat for the monitoring of body position, posture, and motion.
机译:灵活的压力传感器在健康监控和人机交互方面提供广泛的应用范围。但是,它们在功能性纺织品和可穿戴电子产品中的实施受到限制,因为现有设备通常都是小型的0D元素,并且压力定位只能通过大量传感器的阵列来实现。基于光纤的解决方案更易于集成和电寻址,但仍受性能和功能有限的困扰。演示了可压缩多材料纤维的不对称截面设计,用于在m(2)尺寸的表面上检测,量化和定位kPa尺度的压力。可缩放的热拉伸技术用于将软热塑性弹性体支撑内的聚合物复合电极共加工为具有可定制结构的长纤维。得益于先进的机械分析,可以对纤维微结构进行定制,以可预测和可逆的方式响应不同的压力范围和位置。通过测量体操垫上的压力来监测身体的位置,姿势和运动,可以证明一维传感器对大型柔性表面的功能。

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