Putuo District People's Hospital, Tongji University, Shanghai 200060, P. R. China.
Interdisciplinary Materials Research Center, School of Materials Science and Engineering, Shanghai Institute of Intelligent Science and Technology, Tongji University, Shanghai 201804, P. R. China.
ACS Appl Mater Interfaces. 2020 Sep 16;12(37):41896-41904. doi: 10.1021/acsami.0c12868. Epub 2020 Sep 2.
With the growing requirements for the renewability and sustainability of electronic products, environmentally friendly cellulose-based materials have attracted immense research interests and gained increasing prominence for electronic devices. Humidity sensors play an essential role in industries, agriculture, climatology, medical services, and daily life. Here, for the first time, we fabricate capacitive humidity sensors based on ionic conductive wood-derived cellulose nanopapers (WCNs). The WCN-based humidity sensors exhibited ultrahigh sensitivity, fast response, small hysteresis, and more importantly, a wide working range of relative humidity (RH). The sensors showed >10 times increase in the sensing signal over the 7-94% RH range at 20 Hz, while many reported humidity sensors with high sensitivity often have the working range limited to high RH levels. Our sensors can realize the distinction of nuances in humidity and exhibit outstanding noncontact skin humidity sensing properties. Flexible WCN-based humidity sensors were also fabricated, and they displayed excellent sensing properties with long-time stability, endowing them with multifunctional applications. The contrast humidity sensing experiment compared to the existing commercial humidity sensor further demonstrated the higher and faster response of our WCN-based sensors. Thus, this work provides effective guidance for the design of high-performance humidity sensors using nanopapers and opens a new dimension for a variety of future applications.
随着人们对电子产品可再生性和可持续性要求的不断提高,环保型纤维素基材料因其在电子设备中的应用而受到了极大的关注。湿度传感器在工业、农业、气候学、医疗服务和日常生活中都起着至关重要的作用。在这里,我们首次基于离子导电的木材衍生纤维素纳米纸(WCN)制备了电容式湿度传感器。基于 WCN 的湿度传感器具有超高的灵敏度、快速的响应速度、较小的滞后性,更重要的是,具有较宽的相对湿度(RH)工作范围。在 20 Hz 时,传感器在 7-94%RH 范围内的感应信号增加了>10 倍,而许多具有高灵敏度的报道的湿度传感器的工作范围通常限于高 RH 水平。我们的传感器能够实现对湿度细微差别的区分,并表现出出色的非接触式皮肤湿度感应性能。此外,我们还制备了基于 WCN 的柔性湿度传感器,它们具有出色的传感性能和长期稳定性,使其具有多功能应用的潜力。与现有商业湿度传感器的对比湿度传感实验进一步证明了我们基于 WCN 的传感器具有更高的响应速度。因此,这项工作为使用纳米纸设计高性能湿度传感器提供了有效的指导,并为各种未来的应用开辟了新的维度。