Department of Mechanical Engineering, Korea Advanced Institute of Science and Technology (KAIST) , 291 Daehak-ro, Yuseong-gu, Daejeon 305-701, South Korea.
Department of Civil, Structural and Environmental Engineering, University at Buffalo , Buffalo, New York 14260, United States.
ACS Appl Mater Interfaces. 2016 Jul 6;8(26):16922-31. doi: 10.1021/acsami.6b04225. Epub 2016 Jun 21.
We report a flexible and wearable pressure sensor based on the giant piezocapacitive effect of a three-dimensional (3-D) microporous dielectric elastomer, which is capable of highly sensitive and stable pressure sensing over a large tactile pressure range. Due to the presence of micropores within the elastomeric dielectric layer, our piezocapacitive pressure sensor is highly deformable by even very small amounts of pressure, leading to a dramatic increase in its sensitivity. Moreover, the gradual closure of micropores under compression increases the effective dielectric constant, thereby further enhancing the sensitivity of the sensor. The 3-D microporous dielectric layer with serially stacked springs of elastomer bridges can cover a much wider pressure range than those of previously reported micro-/nanostructured sensing materials. We also investigate the applicability of our sensor to wearable pressure-sensing devices as an electronic pressure-sensing skin in robotic fingers as well as a bandage-type pressure-sensing device for pulse monitoring at the human wrist. Finally, we demonstrate a pressure sensor array pad for the recognition of spatially distributed pressure information on a plane. Our sensor, with its excellent pressure-sensing performance, marks the realization of a true tactile pressure sensor presenting highly sensitive responses to the entire tactile pressure range, from ultralow-force detection to high weights generated by human activity.
我们报告了一种基于三维(3-D)微孔介电弹性体的巨压电容效应的灵活可穿戴压力传感器,该传感器能够在大触觉压力范围内实现高灵敏度和稳定的压力感应。由于弹性介电层内存在微孔,我们的压电容压力传感器可以通过非常小的压力进行高度变形,从而显著提高其灵敏度。此外,压缩下微孔的逐渐关闭增加了有效介电常数,从而进一步提高了传感器的灵敏度。具有串联堆叠的弹性体桥的 3-D 微孔介电层可以覆盖比以前报道的微/纳米结构传感材料宽得多的压力范围。我们还研究了我们的传感器作为电子压力感应皮肤在机器人手指中的可穿戴压力感应设备以及用于监测人手腕脉搏的绷带式压力感应设备的适用性。最后,我们展示了一个压力传感器阵列垫,用于识别平面上空间分布的压力信息。我们的传感器具有出色的压力感应性能,标志着真正的触觉压力传感器的实现,它对整个触觉压力范围(从超低力检测到人类活动产生的高重量)具有高度敏感的响应。