Nesser Hussein, Lubineau Gilles
King Abdullah University of Science and Technology (KAUST), Physical Sciences and Engineering Division (PSE), COHMAS Laboratory, Thuwal 23955-6900, Saudi Arabia.
ACS Appl Mater Interfaces. 2021 Aug 4;13(30):36062-36070. doi: 10.1021/acsami.1c07704. Epub 2021 Jul 26.
Accurate wireless strain monitoring is critical for many engineering applications. Capacitive strain sensors are well suited for remote sensing but currently have a limited sensitivity. This study presents a new approach for improving the sensitivity of electrical capacitance change-based strain sensors. Our technology is based on a dielectric elastomer layer laminated between two fragmented electrodes (i.e., carbon nanotube papers) that, by design, experiences a significant change in resistance (from Ω to MΩ) when stretched and makes the sensor behave as a transmission line, a well-known structure in telecommunication engineering. The strain-dependent voltage attenuation over the structure length results in a large variation of the effective capacitance (gauge factor exceeding 37 at 3% strain).
精确的无线应变监测对许多工程应用至关重要。电容式应变传感器非常适合遥感,但目前灵敏度有限。本研究提出了一种提高基于电容变化的应变传感器灵敏度的新方法。我们的技术基于夹在两个破碎电极(即碳纳米管纸)之间的介电弹性体层,通过设计,该层在拉伸时电阻会发生显著变化(从Ω到MΩ),使传感器表现为传输线,这是电信工程中一种众所周知的结构。结构长度上与应变相关的电压衰减导致有效电容的大幅变化(在3%应变下应变系数超过37)。