Kong Ye, Zhao Zhe, Wang Yunqi, Yang Shuo, Huang Gaoshan, Wang Yang, Liu Chang, You Chunyu, Tan Ji, Wang Chao, Xu Borui, Cui Jizhai, Liu Xuanyong, Mei Yongfeng
Department of Materials Science, Fudan University, Shanghai 200433, P. R. China.
International Institute for Intelligent Nanorobots and Nanosystems, Fudan University, Shanghai 200438, P. R. China.
ACS Appl Mater Interfaces. 2021 Dec 8;13(48):58104-58113. doi: 10.1021/acsami.1c16322. Epub 2021 Nov 22.
Carbon dioxide (CO) sensing using an optical technique is of great importance in the environment and industrial emission monitoring. However, limited by the poor specific adsorption of gas molecules as well as insufficient coupling efficiency, there is still a long way to go toward realizing a highly sensitive optical CO gas sensor. Herein, by combining the advantages of a whispering-gallery-mode microcavity and a metal-organic framework (MOF) film, a porous functional microcavity (PF-MC) was fabricated with the assistance of the atomic layer deposition technique and was applied to CO sensing. In this functional composite, the rolled-up microcavity provides the ability to tune the propagation of light waves and the electromagnetic coupling with the surroundings via an evanescent field, while the nanoporous MOF film contributes to the specific adsorption of CO. The composite demonstrates a high sensitivity of 188 nm RIU (7.4 pm/% with respect to the CO concentration) and a low detection limit of ∼5.85 × 10 RIU. Furthermore, the PF-MC exhibits great selectivity to CO and outstanding reproducibility, which is promising for the next-generation optical gas sensing devices.
利用光学技术进行二氧化碳(CO)传感在环境和工业排放监测中具有重要意义。然而,由于气体分子的特异性吸附较差以及耦合效率不足,要实现高灵敏度的光学CO气体传感器仍有很长的路要走。在此,通过结合回音壁模式微腔和金属有机框架(MOF)薄膜的优点,借助原子层沉积技术制备了一种多孔功能微腔(PF-MC)并将其应用于CO传感。在这种功能复合材料中,卷曲的微腔能够通过倏逝场调节光波的传播以及与周围环境的电磁耦合,而纳米多孔MOF薄膜则有助于CO的特异性吸附。该复合材料表现出188 nm/RIU的高灵敏度(相对于CO浓度为7.4 pm/%)和约5.85×10⁻⁶ RIU的低检测限。此外,PF-MC对CO具有很高的选择性和出色的重现性,这对于下一代光学气体传感装置很有前景。