State Key Laboratory of Optoelectronic Materials and Technologies and the Guangdong Province Key Laboratory of Display Material and Technology, School of Electronics and Information Technology , Sun Yat-sen University , Guangzhou 510275 , China.
The Ministry of Education Key Laboratory of Micro and Nano Systems for Aerospace , Northwestern Polytechnical University , Xi'an 710072 , China.
ACS Appl Mater Interfaces. 2019 Jan 16;11(2):2364-2373. doi: 10.1021/acsami.8b17437. Epub 2018 Dec 31.
Fabrication of stretchable chemical sensors becomes increasingly attractive for emerging wearable applications in environmental monitoring and health care. Here, for the first time, chemically derived ionic conductive polyacrylamide/carrageenan double-network (DN) hydrogels are exploited to fabricate ultrastretchable and transparent NO and NH sensors with high sensitivity (78.5 ppm) and low theoretical limit of detection (1.2 ppb) in NO detection. The hydrogels can withstand various rigorous mechanical deformations, including up to 1200% strain, large-range flexion, and twist. The drastic mechanical deformations do not degrade the gas-sensing performance. A facile solvent replacement strategy is devised to partially replace water with glycerol (Gly) molecules in the solvent of hydrogel, generating the water-Gly binary hydrogel with 1.68 times boosted sensitivity to NO and significantly enhanced stability. The DN-Gly NO sensor can maintain its sensitivity for as long as 9 months. The high sensitivity is attributed to the abundant oxygenated functional groups in the well-designed polymer chains and solvent. A gas-blocking mechanism is proposed to understand the positive resistance shift of the gas sensors. This work sheds light on utilizing ionic conductive hydrogels as novel channel materials to design highly deformable and sensitive gas sensors.
制备具有拉伸性能的化学传感器对于新兴的可穿戴环境监测和医疗应用越来越有吸引力。在这里,我们首次利用化学衍生的离子导电聚丙烯酰胺/卡拉胶双网络(DN)水凝胶来制备超拉伸和透明的 NO 和 NH 传感器,该传感器在 NO 检测中具有高灵敏度(78.5 ppm)和低理论检测限(1.2 ppb)。水凝胶可以承受各种苛刻的机械变形,包括高达 1200%的应变、大范围弯曲和扭转。剧烈的机械变形不会降低气体传感性能。设计了一种简单的溶剂置换策略,部分将水凝胶溶剂中的水用甘油(Gly)分子替代,生成具有 1.68 倍增强的 NO 灵敏度和显著增强的稳定性的水-甘油二元水凝胶。DN-Gly NO 传感器可以保持长达 9 个月的灵敏度。高灵敏度归因于聚合物链和溶剂中丰富的含氧官能团。提出了一种气体阻断机制来理解气体传感器的正向电阻变化。这项工作为利用离子导电水凝胶作为新型通道材料设计高可变形和高灵敏度的气体传感器提供了思路。