Zhai Tianliang, Verdolotti Letizia, Kacilius Saulius, Cerruti Pierfrancesco, Gentile Gennaro, Xia Hesheng, Stanzione Mariamelia, Buonocore Giovanna Giuliana, Lavorgna Marino
Institute of Polymers, Composites and Biomaterials, National Research Council, P.le Fermi, 1-80125 Portici, NA, Italy.
Nanoscale. 2019 May 9;11(18):8835-8844. doi: 10.1039/c9nr00157c.
Anisotropic aerogel-foam composites were developed by embedding a reduced graphene oxide (rGO)/chitosan aerogel directly into an open-cell polyurethane foam through an in situ bidirectional freeze-drying process. The resulting aerogel-foam composites possess both excellent compression-resilience performance and stable piezo-resistive properties due, respectively, to the excellent mechanical properties of polyurethane foams and to the presence of a chitosan-based aerogel loaded with rGO. The latter, indeed, provides outstanding electrical properties due to its conductive and parallel flat lamellar structure. It has been proven that both mechanical and piezo-resistive properties are stable even after 1000 loading/unloading cycles and a reduction of the electrical resistance of about 86% is observed upon the application of a 60% strain. The high sensitivity, long cycling life, and reliable performance over a wide strain range make this unique anisotropic aerogel-foam composite a highly promising candidate for the production of wearable sensors and healthcare monitoring devices.
通过原位双向冷冻干燥工艺,将还原氧化石墨烯(rGO)/壳聚糖气凝胶直接嵌入开孔聚氨酯泡沫中,制备出各向异性气凝胶-泡沫复合材料。所得的气凝胶-泡沫复合材料分别由于聚氨酯泡沫优异的机械性能以及负载rGO的壳聚糖基气凝胶的存在,而兼具出色的抗压回弹性能和稳定的压阻特性。实际上,后者因其导电且平行的扁平层状结构而具有优异的电学性能。已证实,即使经过1000次加载/卸载循环,其机械性能和压阻特性依然稳定,并且在施加60%应变时,电阻降低约86%。这种独特的各向异性气凝胶-泡沫复合材料具有高灵敏度、长循环寿命以及在宽应变范围内可靠的性能,使其成为生产可穿戴传感器和医疗监测设备的极具潜力的候选材料。