MXene Supported Surface Plasmon Polaritons for Optical Microfiber Ammonia Sensing

Hui Li, Kai Yang, Haibo Hu, Chengbing Qin, Benli Yu, Sheng Zhou*, Tongtong Jiang*, Derek Ho*

*Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

4 Citations (Scopus)

Abstract

The properties of surface plasmons are notoriously dependent on the supporting materials system. However, new capabilities cannot be obtained until the technique of surface plasmon enabled by advanced two-dimensional materials is well understood. Herein, we present the experimental demonstration of surface plasmon polaritons (SPPs) supported by single-layered MXene flakes (Ti3C2Tx) coating on an optical microfiber and its application as an ammonia gas sensor. Enabled by its high controllability of chemical composition, unique atomistically thin layered structure, and metallic-level conductivity, MXene is capable of supporting not only plasmon resonances across a wide range of wavelengths but also a selective sensing mechanism through frequency modulation. Theoretical modeling and optics experiments reveal that, upon adsorbing ammonia molecules, the free electron motion at the interface between the SiO2 microfiber and the MXene coating is modulated (i.e., the modulation of the SPPs under applied light), thus inducing a variation in the evanescent field. Consequently, a wavelength shift is produced, effectively realizing a selective and highly sensitive ammonia sensor with a 100 ppm detection limit. The MXene supported SPPs open a promising path for the application of advanced optical techniques toward gas and chemical analysis. © 2024 American Chemical Society.
Original languageEnglish
Pages (from-to)11823-11831
JournalAnalytical Chemistry
Volume96
Issue number29
Online published12 Jul 2024
DOIs
Publication statusPublished - 23 Jul 2024

Funding

This work was financed by the National Natural Science Foundation of China (61905001), the Hong Kong Innovation and 497 Technology Commission (ITS/166/19 and InnoHK) and 498 the City University of Hong Kong (7005651), University Natural Science Research Project of Anhui Province (2023AH050088), and the Program of State Key Laboratory of Quantum Optics and Quantum Optics Devices (KF202212).

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