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首页> 外文期刊>ACS applied materials & interfaces >A Stretchable Strain-Insensitive Temperature Sensor Based on Free-Standing Elastomeric Composite Fibers for On-Body Monitoring of Skin Temperature
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A Stretchable Strain-Insensitive Temperature Sensor Based on Free-Standing Elastomeric Composite Fibers for On-Body Monitoring of Skin Temperature

机译:基于独立弹性体复合纤维的可伸缩应变 - 不敏感温度传感器,用于皮肤温度的体内监测

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摘要

To realize the potential applications of stretchable sensors in the field of wearable health monitoring, it is essential to develop a stable sensing device with robust electrical and mechanical properties in the present of varying external conditions. Herein, we demonstrate a stretchable temperature sensor with the elimination of strain-induced interference via geometric engineering of the free-standing stretchable fibers (FSSFs) of reduced graphene oxide/polyurethane composite. The FSSFs were formed in serpentine structures and enabled the implementation of a strain-insensitive stretchable temperature sensor. On the basis of the controlled reduction time of graphene oxide, we can modulate the response and thermal index of the device. These results are attributed to the variation in the density of oxygen-containing functional groups in the FSSFs, which affect the hopping charge transport and thermal generation of excess carriers. The FSSF temperature sensor yields increased responsivity (0.8%/degrees C), stretchability (90%), sensing resolution (0.1 degrees C), and stability in response to applied stretching (+/- 0.37 degrees C for strains ranging from 0 to 50%). When the sensor is sewn onto a stretchable bandage and attached to the human body, it can detect the temperature changes of the human skin during different body motions in a continuous and stable manner.
机译:为了实现可穿戴式健康监测领域的可拉伸传感器的潜在应用,必须在不同的外部条件下产生具有鲁棒电气和机械性能的稳定感测装置。在此,我们证明了一种可拉伸的温度传感器,通过减少石墨烯氧化物/聚氨酯复合材料的独立伸缩纤维(FSSF)的几何工程消除应变诱导的干扰。 FSSF在蛇形结构中形成,并使能菌株不敏感的可拉伸温度传感器的实现。在氧化石墨烯的受控还原时间的基础上,我们可以调节装置的响应和热指数。这些结果归因于FSSFS中含氧官能团密度的变化,这影响了跳跃的电荷传输和多余载体的热产生。 FSSF温度传感器产生响应性增加(0.8%/℃),拉伸性(90%),感测分辨率(0.1摄氏度),以及响应于施加拉伸的稳定性(+/- 0.37℃,菌株为0至50的菌株%)。当传感器被缝合到可拉伸的绷带上并连接到人体上时,它可以以连续且稳定的方式检测不同体图的人体皮肤的温度变化。

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