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Strain Sensors with Adjustable Sensitivity by Tailoring the Microstructure of Graphene Aerogel/PDMS Nanocomposites

机译:通过定制石墨烯气凝胶/ PDMS纳米复合材料的微观结构来调节灵敏度的应变传感器

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Strain sensors with high elastic limit and high sensitivity are required to meet the rising demand for wearable electronics. Here, we present the fabrication of highly sensitive strain Seniors based on nanocomposites consisting of graphene aerogel (GA) and polyclimethylsiloxane.(PDMS), :with the primary focus being to tune the sensitivity of the sensors by tailoring the cellular microstructure through controlling the manufacturing processes. The resultant nanocomposite sensors-exhibit a high sensitivity with a gauge factor of up to approximately 61.3. Of significant importance is that the sensitivity of the strain sensors can be readily altered by changing the concentration of the precursor (i.e., an aqueous dispersion of graphene oxide) and the freezing temperature used to process the GA The results reveal that these two parameters control the cell size and cell-wall thickness of the resultant GA, which may be correlated to the observed variations in the sensitivities of the strain sensors. The higher is the concentration of graphene oxide, then the lower is the sensitivity of the resultant nanocomposite strain sensor-,Upon increasing the freezing temperature from -196 to -20 degrees C, the sensitivity increases and reaches a maximum value of 61.3 at -50 degrees C and then decreases with a further increase in freezing temperature to -20 degrees C. Furthermore, the strain sensors offer excellent durability and stability, with their piezoresistivities remaining virtually unchanged even after 10,000 cycles of high-strain loading unloading. These novel findings pave the way to custom design strain sensors with a desirable piezoresistive behavior.
机译:需要具有高弹性极限和高灵敏度的应变传感器来满足对可穿戴电子设备不断增长的需求。在这里,我们介绍了基于由石墨烯气凝胶(GA)和聚甲基丙烯酸硅氧烷(PDMS)组成的纳米复合材料制造的高灵敏度应变老年人材料:其主要重点是通过控制制造过程来调整细胞的微观结构,从而调节传感器的灵敏度。流程。所得的纳米复合传感器表现出高的灵敏度,其规格因子高达约61.3。极为重要的是,可以通过改变前体的浓度(即氧化石墨烯的水分散液)和用于加工GA的冷冻温度来轻松改变应变传感器的灵敏度。结果表明,这两个参数控制着温度所得GA的孔大小和孔壁厚度可能与应变传感器灵敏度的变化有关。氧化石墨烯的浓度越高,则得到的纳米复合应变传感器的灵敏度越低,将冷冻温度从-196提高到-20摄氏度时,灵敏度增加,在-50时达到最大值61.3 ,然后随着冷冻温度进一步升高到-20摄氏度而降低。此外,应变传感器具有出色的耐用性和稳定性,即使经过10,000次高应变加载卸载,其压阻也几乎保持不变。这些新颖的发现为定制设计具有理想压阻特性的应变传感器铺平了道路。

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