The Institute of Scientific and Industrial Research , Osaka University , 8-1 Mihogaoka , Ibaraki , Osaka 567-0047 , Japan.
ACS Appl Mater Interfaces. 2019 Nov 20;11(46):43488-43493. doi: 10.1021/acsami.9b13886. Epub 2019 Nov 8.
A nanopaper sensor device that combines humidity sensing, wireless information transmission, and degradability has been fabricated using wood-derived nanopaper as the substrate and dielectric layers. The nanopaper shows excellent suitability for capacitor dielectric layers because of its high dielectric constant, insulating properties suitable for thin-film formation, and lamination properties. A wireless transmission circuit containing the nanopaper capacitor can transmit radio signals in the megahertz band, and the relative humidity change can be output as a change in the radio signal owing to the humidity sensitivity of the nanopaper capacitor. More than 95% of the total volume of the nanopaper sensor device decomposes in soil after 40 days. Because the nanopaper sensor device does not need to be recovered, it is expected to greatly contribute to a sustainable society through realization of hyperdense observation networks by mass installation of sensor devices.
一种纳米纸传感器装置,结合了湿度感应、无线信息传输和可降解性,使用木质纳米纸作为基底和介电层制造而成。由于其高介电常数、适合薄膜形成的绝缘性能以及层压性能,纳米纸非常适合用作电容器介电层。包含纳米纸电容器的无线传输电路可以在兆赫频段传输无线电信号,并且由于纳米纸电容器的湿度敏感性,相对湿度的变化可以作为无线电信号的变化输出。在 40 天后,纳米纸传感器装置的总容积超过 95%在土壤中分解。由于不需要回收纳米纸传感器装置,因此通过大规模安装传感器装置实现超密集观测网络,有望为可持续社会做出巨大贡献。