Zhang Hao, Wang Shijun, Zhang Jie, Zhou Gan, Sun Xiaohang, Wang Yiming, Wang Yujie, Zhang Kang
School of Chemical and Printing-Dyeing Engineering, Henan University of Engineering, Zhengzhou, Henan 450000, PR China.
School of Chemical and Printing-Dyeing Engineering, Henan University of Engineering, Zhengzhou, Henan 450000, PR China.
Carbohydr Polym. 2024 Mar 15;328:121742. doi: 10.1016/j.carbpol.2023.121742. Epub 2023 Dec 28.
Cellulose-based composites have attracted significant attention in the fabrication and advancement of wearable devices due to their sustainable, degradable, and cost-effective properties. However, achieving a cellulosic sensor with reliable sensory feedback remains challenging owing to the deficiency in reversible microstructures during response processes. In this study, we developed a piezoresistive sensor consisting of nearly pure cellulose handsheets using origami-inspired corrugated structures to achieve durable and sensitive piezoresistive responses. Multi-walled carbon nanotubes (MWCNTs) were used as conducting agents. With the addition of 7 wt% MWCNTs, 36.27 % of the cellulose fiber surface was covered and the conductivity of cellulose handsheets was increased to 8.7 S/m. The obtained conductive cellulose handsheets were transformed into corrugated structures and integrated orthogonally to construct the piezoresistive sensors with reversible electrical paths for electrons. The restorable corrugated structure endowed the sensors with a wide workable pressure range (0-10 kPa), high sensitivity (6.09 kPa in a range of 0-0.92 kPa), fast response time (<280 ms), and good durability (>1000 cycles). Furthermore, the practical applications of the proposed sensors as wearable devices were demonstrated through phonation, real-time sports monitoring, and step pressure tests.
基于纤维素的复合材料因其可持续、可降解和成本效益高的特性,在可穿戴设备的制造和发展中受到了广泛关注。然而,由于响应过程中可逆微结构的缺乏,实现具有可靠传感反馈的纤维素传感器仍然具有挑战性。在本研究中,我们利用折纸启发的波纹结构开发了一种由几乎纯纤维素手抄纸组成的压阻传感器,以实现持久且灵敏的压阻响应。多壁碳纳米管(MWCNTs)用作导电剂。添加7 wt%的MWCNTs后,纤维素纤维表面的覆盖率达到36.27%,纤维素手抄纸的电导率提高到8.7 S/m。将获得的导电纤维素手抄纸转变为波纹结构并正交集成,构建具有可逆电子路径的压阻传感器。可恢复的波纹结构赋予传感器宽的工作压力范围(0-10 kPa)、高灵敏度(在0-0.92 kPa范围内为6.09 kPa)、快速响应时间(<280 ms)和良好的耐久性(>1000次循环)。此外,通过发声、实时运动监测和步压测试展示了所提出的传感器作为可穿戴设备的实际应用。