Aslanidis Evangelos, Skotadis Evangelos, Tsoukalas Dimitris
Department of Applied Physics, National Technical University of Athens, Athens, 15780, Greece.
Nanoscale. 2021 Feb 11;13(5):3263-3274. doi: 10.1039/d0nr07002e.
In this paper, we report the demonstration of highly sensitive flexible strain sensors formed by a network of metallic nanoparticles (NPs) grown under vacuum on top of a cracked thin alumina film which has been deposited by atomic layer deposition. It is shown that the sensor sensitivity depends on the surface density of NPs as well as on the thickness of alumina thin films that can both be well controlled via the deposition techniques. This method allows reaching a record strain sensitivity value of 2.6 × 108 at 7.2% strain, while exhibiting high sensitivity in a large strain range from 0.1% to 7.2%. The demonstration is followed by a discussion enlightening the physical understanding of sensor operation, which enables the tuning of its performance according to the above process parameters.
在本文中,我们报道了一种高灵敏度柔性应变传感器的演示,该传感器由在真空条件下生长在通过原子层沉积法沉积的破裂薄氧化铝薄膜顶部的金属纳米颗粒(NPs)网络构成。结果表明,传感器的灵敏度取决于纳米颗粒的表面密度以及氧化铝薄膜的厚度,这两者均可通过沉积技术得到很好的控制。该方法在7.2%应变下可达到2.6×108的创纪录应变灵敏度值,同时在0.1%至7.2%的大应变范围内表现出高灵敏度。在演示之后进行了讨论,以阐明对传感器工作原理的物理理解,这使得能够根据上述工艺参数调整其性能。