School of Physics and Electronic Science, East China Normal University, Shanghai 200241, China.
Engineering Research Center of Nanoelectronic Integration and Advanced Equipment, Ministry of Education, China.
Nanoscale. 2021 Nov 25;13(45):19155-19164. doi: 10.1039/d1nr05017f.
Conductive coating sponge piezoresistive pressure sensors are attracting much attention because of their simple production and convenient signal acquisition. However, manufacturing sponge-structure pressure-sensing materials with high compressibility and wide pressure detection ranges is difficult because of the instability of rigid and brittle conductive coatings at large strains. Herein, a tough conductive hydrogel@polyurethane (PU) sponge with a porous design is prepared immersion of a polyurethane sponge in a low-cost and biocompatible polyvinyl alcohol (PVA)/glycerin (Gl)/sodium chloride (NaCl) solution. The sensor based on the hydrogel/elastomer sponge composite material exhibits a compressible range of 0-93%, a pressure detection range of 100 Pa-470.2 kPa, and 10 000-cycle stability (80% strain) because of the compressibility, flexibility, and toughness of the porous hydrogel coating. Benefiting from the resistance change mechanism of microporous compression, the sensor also exhibits a wide range of linear resistance changes, and the corresponding sensitivity and gauge factor (GF) are -0.083 kPa (100 Pa-10.0 kPa) and -1.33 (1-60% strain), respectively. Based on its flexibility, compressibility, and wide-ranging linear resistance changes, the proposed sensor has huge potential application in human activity monitoring, electronic skin, and wearable electronic devices.
导电涂层海绵压阻压力传感器因其生产简单、信号采集方便而受到广泛关注。然而,由于刚性和脆性导电涂层在大应变下的不稳定性,制造具有高可压缩性和宽压力检测范围的海绵结构压力感应材料具有一定的难度。在此,通过将聚氨酯海绵浸入低成本且生物相容的聚乙烯醇(PVA)/甘油(Gl)/氯化钠(NaCl)溶液中,制备了一种具有多孔设计的坚韧导电水凝胶@聚氨酯(PU)海绵。基于水凝胶/弹性体海绵复合材料的传感器具有可压缩范围为 0-93%、压力检测范围为 100 Pa-470.2 kPa 和 10000 次循环稳定性(80%应变),这是由于多孔水凝胶涂层的可压缩性、柔韧性和韧性。得益于微孔压缩的电阻变化机制,传感器还表现出大范围的线性电阻变化,相应的灵敏度和应变系数(GF)分别为-0.083 kPa(100 Pa-10.0 kPa)和-1.33(1-60%应变)。基于其柔韧性、可压缩性和广泛的线性电阻变化,所提出的传感器在人体活动监测、电子皮肤和可穿戴电子设备方面具有巨大的潜在应用。