Collaborative Innovation Center of Advanced Microstructures, Jiangsu Provincial Key Laboratory of Photonic and Electronic Materials, School of Electronic Science and Engineering , Nanjing University , 210093 Nanjing , China.
Materials Science and Engineering Program and Department of Mechanical Engineering , The University of Texas at Austin , Austin , Texas 78712 , United States.
Nano Lett. 2018 Jul 11;18(7):4570-4575. doi: 10.1021/acs.nanolett.8b01825. Epub 2018 Jun 27.
Near-field communication (NFC) labeling technology has been recently used to endow smartphones with nonline-of-sight sensing functions to improve the environment, human health, and quality of life. For applications in detecting food spoilage, the development of a sensor with high enough sensitivity to act as a switch for an NFC tag remains a challenge. In this Letter, we developed a nanostructured conductive polymer-based gas sensor with high sensitivity of Δ R/ R = 225% toward 5 ppm ammonia NH and unprecedented sensitivities of 46% and 17% toward 5 ppm putrescine and cadaverine, respectively. The gas sensor plays a critical role as a sensitive switch in the circuit of the NFC tag and enables a smartphone to readout meat spoilage when the concentration of biogenic amines is over a preset threshold. We envision the broad potential use of such intelligent sensing for food status monitoring applications in daily life, storage and supply chains.
近场通信 (NFC) 标签技术最近被用于为智能手机赋予非视距感应功能,以改善环境、人类健康和生活质量。对于用于检测食物变质的应用,开发一种具有足够高灵敏度的传感器来充当 NFC 标签的开关仍然是一个挑战。在这封信中,我们开发了一种基于纳米结构导电聚合物的气体传感器,对 5 ppm 氨 NH 的灵敏度高达 ΔR/R=225%,对 5 ppm 腐胺和尸胺的灵敏度分别达到了前所未有的 46%和 17%。当生物胺浓度超过预设阈值时,气体传感器在 NFC 标签电路中充当敏感开关,使智能手机能够读取肉类变质情况。我们设想这种智能感应在日常生活、储存和供应链中的食品状态监测应用中有广泛的应用潜力。