Lv Jian, Kong Chuncai, Yang Chao, Yin Lu, Jeerapan Itthipon, Pu Fangzhao, Zhang Xiaojing, Yang Sen, Yang Zhimao
School of Science, MOE Key Laboratory for Non-Equilibrium Synthesis and Modulation of Condensed Matter, Xi'an Jiaotong University, Xi'an 710049, Shaanxi, P. R. China.
Department of NanoEngineering, University of California, San Diego, La Jolla, California 92093, USA.
Beilstein J Nanotechnol. 2019 Feb 14;10:475-480. doi: 10.3762/bjnano.10.47. eCollection 2019.
A stable and highly sensitive graphene/hydrogel strain sensor is designed by introducing glycerol as a co-solvent in the formation of a hydrogel substrate and then casting a graphene solution onto the hydrogel in a simple, two-step method. This hydrogel-based strain sensor can effectively retain water in the polymer network due to the formation of strong hydrogen bonding between glycerol and water. The addition of glycerol not only enhances the stability of the hydrogel over a wider temperature range, but also increases the stretchability of the hydrogel from 800% to 2000%. The enhanced sensitivity can be attributed to the graphene film, whereby the graphene flakes redistribute to optimize the contact area under different strains. The careful design enables this sensor to be used in both stretching and bending modes. As a demonstration, the as-prepared strain sensor was applied to sense the movement of finger knuckles. Given the outstanding performance of this wearable sensor, together with the proposed scalable fabrication method, this stable and sensitive hydrogel strain sensor is considered to have great potential in the field of wearable sensors.
通过在水凝胶基质形成过程中引入甘油作为共溶剂,然后采用简单的两步法将石墨烯溶液浇铸到水凝胶上,设计出一种稳定且高度灵敏的石墨烯/水凝胶应变传感器。由于甘油与水之间形成了强氢键,这种基于水凝胶的应变传感器能够有效地在聚合物网络中保留水分。甘油的添加不仅提高了水凝胶在更宽温度范围内的稳定性,还将水凝胶的拉伸性从800%提高到了2000%。灵敏度的提高可归因于石墨烯薄膜,在不同应变下,石墨烯薄片会重新分布以优化接触面积。精心的设计使该传感器能够在拉伸和弯曲模式下使用。作为演示,将制备好的应变传感器应用于感知手指关节的运动。鉴于这种可穿戴传感器的出色性能以及所提出的可扩展制造方法,这种稳定且灵敏的水凝胶应变传感器被认为在可穿戴传感器领域具有巨大潜力。