Physical Sciences and Engineering Division (PSE), COHMAS Laboratory , King Abdullah University of Science and Technology (KAUST) , Thuwal 23955-6900 , Saudi Arabia.
ACS Appl Mater Interfaces. 2018 Oct 3;10(39):33507-33515. doi: 10.1021/acsami.8b08166. Epub 2018 Sep 21.
Highly stretchable strain sensors are key elements of new applications in wearable electronics and soft robotics. Most of the available technologies only measure positive strain (stretching), and cannot measure negative strains (compression). We propose here a stretchable technology that enables the measurement of both negative and positive strains with high sensitivity. A carbon nanotube paper is pre-cracked to introduce a well-controlled network of open cracks as the sensing element; then, the pre-cracked paper is sandwiched by a thermoplastic elastomer. The resulting sensor is also pre-stretched and subjected to thermal annealing, which removes any residual stress so that the pre-stretched configuration remains stable. This process results in a stretchable structure with a network of open cracks that is sensitive to both negative and positive strains. We demonstrate that such sensors can measure negative strains up to -13% with high sensitivity and robust stretchability.
高拉伸应变传感器是可穿戴电子设备和软体机器人等新应用的关键元件。现有的大多数技术只能测量正应变(拉伸),而无法测量负应变(压缩)。我们在这里提出了一种可拉伸技术,该技术可实现对正应变和负应变的高灵敏度测量。将碳纳米管纸预先开裂,以引入具有良好可控性的开式裂纹网络作为传感元件;然后,将预裂纸夹在热塑性弹性体之间。得到的传感器也经过预拉伸和热退火处理,以消除任何残余应力,从而使预拉伸结构保持稳定。该过程产生了一种具有开式裂纹网络的可拉伸结构,对正应变和负应变都很敏感。我们证明了这种传感器可以以高灵敏度和强大的可拉伸性测量高达-13%的负应变。