State Key Laboratory of Extreme Photonics and Instrumentation, College of Optical Science and Engineering, Zhejiang University, Hangzhou 310027, Zhejiang Province, P.R. China.
Research Center for Frontier and Fundamental Studies, Zhejiang Laboratory, Yuhang District, Hangzhou 311121, Zhejiang Province, P.R. China.
ACS Appl Mater Interfaces. 2024 Oct 9;16(40):54520-54528. doi: 10.1021/acsami.4c07698. Epub 2024 Sep 28.
Wearable electronics have significantly advanced the development of highly stretchable strain sensors, which are essential for applications such as health monitoring, human-machine interfaces, and energy harvesting. Fiber-based sensors and polymeric materials are promising due to their flexibility and tunable properties, although balancing sensitivity and stretchability remains a challenge. This study introduces a novel composite strain sensor that combines poly(3-hexylthiophene) and tetrafluoro-tetracyanoquinodimethane to form a charge-transfer complex (CTC) with carbon nanotubes (CNTs) on a styrene-butadiene-styrene substrate. The CTC improves conductivity through effective charge transfer, while CNTs provide mechanical reinforcement and maintain conductive paths, preventing cracks under large strains. Purposefully introduced wrinkles in the structure enhance the detection of small strains. The sensor demonstrated a broad strain-sensing range from 0.01 to 200%, exhibiting high sensitivity to both minor and major deformations. Mechanical tests confirmed strong stress-strain performance, and electrical tests indicated significant conductivity improvements with CNT integration. These results highlight the potential of the sensor for applications in health monitoring, human-machine interfaces, and energy harvesting, effectively mimicking the tactile sensing abilities of human skin.
可穿戴电子设备极大地推动了高拉伸应变传感器的发展,这些传感器对于健康监测、人机界面和能量收集等应用至关重要。基于纤维的传感器和聚合物材料具有很大的应用前景,因为它们具有灵活性和可调的特性,尽管平衡灵敏度和拉伸性仍然是一个挑战。本研究介绍了一种新型的复合应变传感器,它将聚(3-己基噻吩)和四氟四氰基对醌二甲烷与碳纳米管(CNT)结合在苯乙烯-丁二烯-苯乙烯基底上形成电荷转移复合物(CTC)。CTC 通过有效的电荷转移提高了导电性,而 CNT 则提供了机械增强并保持了导电路径,防止在大应变下出现裂纹。在结构中有意引入的皱纹增强了对小应变的检测。该传感器在 0.01 至 200%的广泛应变传感范围内表现出高灵敏度,对小变形和大变形都具有高灵敏度。机械测试证实了其具有很强的应力-应变性能,而电测试表明,与 CNT 集成后,导电性有显著提高。这些结果突出了该传感器在健康监测、人机界面和能量收集方面的应用潜力,有效地模拟了人类皮肤的触觉传感能力。