Liu Chong, Yue Longwang, Fu Yu, Wan Zhenshuai, Wang Li, Wei Yangke, Li Sha
School of Mechanical and Electrical Engineering, Henan University of Technology, Zhengzhou 450001, China.
School of Mechanics and Safety Engineering, Zhengzhou University, Zhengzhou 450001, China.
Gels. 2024 Aug 27;10(9):555. doi: 10.3390/gels10090555.
Flexible sensors can measure various stimuli owing to their exceptional flexibility, stretchability, and electrical properties. However, the integration of multiple stimuli into a single sensor for measurement is challenging. To address this issue, the sensor developed in this study utilizes the natural biopolymers sodium alginate and carboxymethyl cellulose to construct a dual interpenetrating network, This results in a flexible porous sponge that exhibits a dual-modal response to strain and magnetic stimulation. The dual-mode flexible sensor achieved a maximum tensile strength of 429 kPa and elongation at break of 24.7%. It also exhibited rapid response times and reliable stability under both strain and magnetic stimuli. The porous foam sensor is intended for use as a wearable electronic device for monitoring joint movements of the body. It provides a swift and stable sensing response to mechanical stimuli arising from joint activities, such as stretching, compression, and bending. Furthermore, the sensor generates opposing response signals to strain and magnetic stimulation, enabling real-time decoupling of different stimuli. This study employed a simple and environmentally friendly manufacturing method for the dual-modal flexible sensor. Because of its remarkable performance, it has significant potential for application in smart wearable electronics and artificial electroskins.
柔性传感器由于其卓越的柔韧性、拉伸性和电学性能,能够测量各种刺激。然而,将多种刺激集成到单个传感器中进行测量具有挑战性。为了解决这个问题,本研究开发的传感器利用天然生物聚合物海藻酸钠和羧甲基纤维素构建了一个双互穿网络,这产生了一种柔性多孔海绵,其对应变和磁刺激表现出双模式响应。该双模式柔性传感器的最大拉伸强度达到429 kPa,断裂伸长率为24.7%。在应变和磁刺激下,它还表现出快速的响应时间和可靠的稳定性。这种多孔泡沫传感器旨在用作监测身体关节运动的可穿戴电子设备。它对关节活动(如伸展、压缩和弯曲)产生的机械刺激提供快速而稳定的传感响应。此外,该传感器对应变和磁刺激产生相反的响应信号,能够实时解耦不同的刺激。本研究采用了一种简单且环保的制造方法来制备这种双模式柔性传感器。由于其卓越的性能,它在智能可穿戴电子设备和人造电子皮肤中具有巨大的应用潜力。