Zhang Kaiying, Chang Shulong, Shang Yuanyuan, Liu Wenjin, Peng Danni, Deng Yuan, Dai Shuge, Shan Chong-Xin, Dong Lin
Henan Key Laboratory of Diamond Optoelectronic Materials and Devices, Key Laboratory of Material Physics, Ministry of Education, School of Physics, Zhengzhou University, Zhengzhou, 450052, China.
School of Computational Science and Electronics, Hunan Institute of Engineering, Xiangtan, 411104, China.
Small. 2024 Dec;20(50):e2406398. doi: 10.1002/smll.202406398. Epub 2024 Oct 2.
Mechanoluminescence (ML)-based sensors are emerging as promising wearable devices, attracting attention for their self-powered visualization of mechanical stimuli. However, challenges such as weak brightness, high activation threshold, and intermittent signal output have hindered their development. Here, a mechanoluminescent/electric dual-mode strain sensor is presented that offers enhanced ML sensing and reliable electrical sensing simultaneously. The strain sensor is fabricated via an optimized dip-coating method, featuring a sandwich structure with a single-walled carbon nanotube (SWNT) interlayer and two polydimethylsiloxane (PDMS)/ZnS:Cu luminescence layers. The integral mechanical reinforcement framework provided by the SWNT interlayer improves the ML intensity of the SWNT/PDMS/ZnS:Cu composite film. Compared to conventional nanoparticle fillers, the ML intensity is enhanced nearly tenfold with a trace amount of SWNT (only 0.01 wt.%). In addition, the excellent electrical conductivity of SWNT forms a conductive network, ensuring continuous and stable electrical sensing. These strain sensors enable comprehensive and precise monitoring of human behavior through both electrical (relative resistance change) and optical (ML intensity) methods, paving the way for the development of advanced visual sensing and smart wearable electronics in the future.
基于机械发光(ML)的传感器正成为有前景的可穿戴设备,因其能对机械刺激进行自供电可视化而备受关注。然而,诸如亮度低、激活阈值高和信号输出间歇性等挑战阻碍了它们的发展。在此,提出了一种机械发光/电双模式应变传感器,它能同时增强ML传感和实现可靠的电传感。该应变传感器通过优化的浸涂法制造,具有由单壁碳纳米管(SWNT)中间层和两个聚二甲基硅氧烷(PDMS)/ZnS:Cu发光层组成的三明治结构。SWNT中间层提供的整体机械增强框架提高了SWNT/PDMS/ZnS:Cu复合膜的ML强度。与传统纳米颗粒填料相比,痕量的SWNT(仅0.01 wt.%)就能使ML强度提高近十倍。此外,SWNT优异的导电性形成了导电网络,确保了连续稳定的电传感。这些应变传感器能够通过电(相对电阻变化)和光(ML强度)两种方法对人类行为进行全面精确的监测,为未来先进的视觉传感和智能可穿戴电子设备的发展铺平了道路。