Yang Xiuli, He Feiran, Qiao Huihui, Yang Shuibo, Wen Dehua, Yang Kaige, Dang Ziyi, He Yin
School of Textile Science and Engineering, Tiangong University, Tianjin 300387, China.
Shaoxing Keqiao Institute, Tiangong University, Shaoxing 312030, China.
Polymers (Basel). 2025 May 30;17(11):1530. doi: 10.3390/polym17111530.
Developing flexible sensors that combine high sensitivity, a wide detection range, and comfortable wearability remains a key challenge in the development of electronic skin. This study presents a breathable, highly sensitive, and wearable piezoresistive sensor based on the preparation of hierarchical microporous PU@MXene + CNT films and single-sided electrodes using a simple and effective method. Distilled water was used as a non-solvent to induce the separation of polyurethane films (PU) with different mass fractions, forming a gradient porous structure with inconsistent pore morphologies in the upper and lower layers. Three-dimensional structure analysis of the hierarchical porous films with varying gradients, conducted using computed tomography, revealed that the porous structures formed after phase separation of PU solutions with different mass fractions exhibited different morphologies. As the mass fraction increased, the pore size, pore volume, and porosity gradually decreased while the surface area gradually increased. The greater the gradient of the constructed porous film, the more significant the difference between the upper- and lower-layer structures. A flexible sensor prepared using the PU@MXene + CNT porous film with the largest gradient exhibited excellent sensitivity in a wide detection range from 0.7 to 20 kPa, which was higher than that of porous films with other gradients, demonstrating high stability (>8000 cycles). The air permeability and moisture permeability of PU@MXene + CNT with the largest gradient were 0.9922 L/m/s and 1123.6 g/m/day, respectively, and these values were 1.35 and 4.40 times those of the non-porous film. Therefore, the constructed flexible piezoresistive sensor with a gradient porous structure had both high sensitivity and wide detection range, as well as good air and moisture permeability. Finally, the sensor successfully monitored human movements, including throat activity, finger motions, and arm bending, demonstrating its potential for wearable electronic applications.
开发兼具高灵敏度、宽检测范围和舒适可穿戴性的柔性传感器仍然是电子皮肤发展中的一项关键挑战。本研究基于一种简单有效的方法制备分层微孔PU@MXene + CNT薄膜和单面电极,提出了一种透气、高灵敏度且可穿戴的压阻式传感器。使用蒸馏水作为非溶剂来诱导不同质量分数的聚氨酯薄膜(PU)分离,形成上下层孔隙形态不一致的梯度多孔结构。利用计算机断层扫描对具有不同梯度的分层多孔薄膜进行三维结构分析,结果表明,不同质量分数的PU溶液相分离后形成的多孔结构呈现出不同的形态。随着质量分数的增加,孔径、孔体积和孔隙率逐渐减小,而表面积逐渐增加。构建的多孔薄膜梯度越大,上下层结构差异越显著。使用具有最大梯度的PU@MXene + CNT多孔薄膜制备的柔性传感器在0.