Department of Chemical and Petroleum Engineering, Sharif University of Technology, P.O. Box 11155-9465, Tehran, Iran.
Department of Chemical and Petroleum Engineering, Sharif University of Technology, P.O. Box 11155-9465, Tehran, Iran.
Adv Colloid Interface Sci. 2021 Dec;298:102553. doi: 10.1016/j.cis.2021.102553. Epub 2021 Oct 26.
Over the past few years, development of wearable devices has gained increasing momentum. Notably, the demand for stretchable strain sensors has significantly increased due to many potential and emerging applications such as human motion monitoring, prosthetics, robotic systems, and touch panels. Recently, hydrogels have been developed to overcome the drawbacks of the elastomer-based wearable strain sensors, caused by insufficient biocompatibility, brittle mechanical properties, complicated fabrication process, as the hydrogels can provide a combination of various exciting properties such as intrinsic electrical conductivity, suitable mechanical properties, and biocompatibility. There are numerous research works reported in the literature which consider various aspects as preparation approaches, design strategies, properties control, and applications of hydrogel-based strain sensors. This article aims to present a review on this exciting topic with a new insight on the hydrogel-based wearable strain sensors in terms of their features, strain sensory performance, and prospective applications. In this respect, we first briefly review recent advances related to designing the materials and the methods for promoting hydrogels' intrinsic features. Then, strain (both tensile and pressure) sensing performance of prepared hydrogels is critically studied, and alternative approaches for their high-performance sensing are proposed. Subsequently, this review provides several promising applications of hydrogel-based strain sensors, including bioapplications and human-machine interface devices. Finally, challenges and future outlooks of conductive and stretchable hydrogels employed in the wearable strain sensors are discussed.
在过去的几年中,可穿戴设备的发展势头越来越强劲。值得注意的是,由于许多潜在和新兴的应用,如人体运动监测、假肢、机器人系统和触摸面板,对可拉伸应变传感器的需求显著增加。最近,水凝胶的发展克服了基于弹性体的可穿戴应变传感器的缺点,由于生物相容性不足、机械性能脆、制造工艺复杂,而水凝胶可以提供各种令人兴奋的特性的组合,如固有电导率、合适的机械性能和生物相容性。文献中有许多研究工作考虑了各种方面,如制备方法、设计策略、性能控制和水凝胶基应变传感器的应用。本文旨在对这一令人兴奋的主题进行综述,并从水凝胶基可穿戴应变传感器的特性、应变传感性能和潜在应用方面提供新的见解。在这方面,我们首先简要回顾了与设计材料和促进水凝胶固有特性的方法相关的最新进展。然后,批判性地研究了所制备的水凝胶的应变(拉伸和压力)传感性能,并提出了用于提高其高性能传感的替代方法。随后,本综述提供了水凝胶基应变传感器的几个有前途的应用,包括生物应用和人机接口设备。最后,讨论了用于可穿戴应变传感器的导电和可拉伸水凝胶所面临的挑战和未来展望。