Faculty of Science, Energy and Environment, King Mongkut's University of Technology North Bangkok, Rayong Campus, Rayong 21120, Thailand.
Advanced Material Research Unit, Faculty of Science, King Mongkut's Institute of Technology Ladkrabang, Bangkok 10520, Thailand.
Nanotechnology. 2021 Apr 9;32(15):155502. doi: 10.1088/1361-6528/abd8ae.
In this paper, titanium dioxide nanosheets (TiO NSs) were incorporated into bacterial cellulose (BC) film for dielectric property tuning while maintaining the flexibility of the resulting composite paper. By taking advantage of the improved dielectric constant, the nanosheets/BC composites were employed as capacitive sensors. The fabricated devices showed the highest sensing performance of ∼2.44 × 10 kPa from 0 to 30 N when incorporating as little as 3 vol% of TiO NSs (or ∼2 wt% Ti). Stable operation and high robustness of the sensor were demonstrated, where simple human motions could be efficiently monitored. This study provided a route for preparing flexible and low-cost BC composite paper for capacitive sensor. The strategy for enhancing the dielectric properties as well as sensing performances of the BC demonstrated herein will be essential for the future development of biocompatible, low-cost, and eco-friendly wearable electronics.
在本文中,将二氧化钛纳米片(TiO NSs)掺入细菌纤维素(BC)薄膜中,以调节介电性能,同时保持所得复合纸的柔韧性。通过利用改善的介电常数,将纳米片/BC 复合材料用作电容传感器。当仅掺入 3 体积%的 TiO NSs(或约 2wt%Ti)时,所制备的器件在 0 至 30N 的范围内表现出最高的约 2.44×10 kPa 的传感性能。该传感器表现出稳定的工作性能和高的鲁棒性,能够有效地监测简单的人体运动。本研究为制备用于电容传感器的柔性和低成本 BC 复合纸提供了一种途径。本文所展示的用于增强 BC 的介电性能和传感性能的策略对于未来开发生物相容性、低成本和环保型可穿戴电子产品至关重要。