State Key Laboratory of Integrated Optoelectronics, Key Laboratory of Advanced Gas Sensors, Jilin Province, College of Electronic Science and Engineering, Jilin University, 2699 Qianjin Street, Changchun 130012, China.
Jihua Laboratory, 28 Huandao South Road, Foshan 528200, Guangdong, China.
ACS Sens. 2024 Jan 26;9(1):171-181. doi: 10.1021/acssensors.3c01804. Epub 2023 Dec 30.
With the rapid development of the concept of the Internet of Things (IoT), gas sensors with the function of simulating the human sense of smell became irreplaceable as a key element. Among them, ammonia (NH) sensors played an important role in respiration tests, environmental monitoring, safety, and other fields. However, the fabrication of the high-performance device with high stability and resistance to mechanical damages was still a challenge. In this work, polyurethane (PU) with excellent self-healing ability was applied as the substrate, and the sensor was designed from new sensitive material design and device structure optimization, through applying the organic molecule with groups which could absorb NH and the laminated structure to shorten the electronic transmission path to achieve a low resistance state and favorable sensing properties. Accordingly, a room temperature flexible NH sensor based on 6,6',6″-(nitrilotris(benzene-4,1-diyl))tris(5-phenylpyrazine-2,3-dicarbonitrile) (TPA-3DCNPZ) was successfully developed. The device could self-heal by means of a thermal evaporation assisted method. It exhibited a detection limit of 1 ppm at 98% relative humidity (RH), as well as great stability, selectivity, bending flexibility, and self-healing properties. The improved NH sensing performance under high RH was further investigated by complex impedance plots (CIPs) and density functional theory (DFT), attributing to the enhanced adsorption of NH. The TPA-3DCNPZ based NH sensors proved to have great potential for application on simulated exhaled breath to determine the severity of kidney diseases and the progress of treatment. This work also provided new ideas for the construction of high-performance room temperature NH sensors.
随着物联网 (IoT) 概念的快速发展,具有模拟人类嗅觉功能的气体传感器作为关键元件变得不可或缺。其中,氨 (NH) 传感器在呼吸测试、环境监测、安全等领域发挥着重要作用。然而,制造具有高稳定性和抗机械损伤能力的高性能器件仍然是一个挑战。在这项工作中,具有优异自修复能力的聚氨酯 (PU) 被用作基底,通过应用具有吸收 NH 基团的有机分子和层状结构来缩短电子传输路径,实现低电阻状态和良好的传感性能,从新的敏感材料设计和器件结构优化的角度来设计传感器。因此,成功开发了一种基于 6,6',6″-(nitrilotris(benzene-4,1-diyl))tris(5-phenylpyrazine-2,3-dicarbonitrile) (TPA-3DCNPZ) 的室温柔性 NH 传感器。该器件可以通过热蒸发辅助方法进行自修复。它在 98%相对湿度 (RH) 下的检测限为 1 ppm,具有良好的稳定性、选择性、弯曲灵活性和自修复性能。通过复杂阻抗谱 (CIP) 和密度泛函理论 (DFT) 进一步研究了高 RH 下 NH 传感性能的提高,这归因于 NH 的增强吸附。基于 TPA-3DCNPZ 的 NH 传感器有望应用于模拟呼气,以确定肾脏疾病的严重程度和治疗进展。这项工作还为构建高性能室温 NH 传感器提供了新的思路。