Rujun Zhou, Mengyu Shi, Zuxi Ouyang, Peishuai Wang, Wei Wang, Yunlian Ding, Delin You, Qiang Ling, Zhangwei Yu, Xinyu Sun, Ding Zhao, Min Qiu, Daru Chen, Si Luo
Despite the urgent need for high-sensitivity, fast-response, ambient-temperature CO2 sensing in environmental, industrial, and biomedical applications, conventional optical platforms suffer from weak light-matter interactions and poor signal contrast. Here, we propose and demonstrate a highly sensitive CO2 gas sensor based on a metafiber platform integrated with a functional polymer thin film. The sensor consists of a gold nanohole array fabricated on the core of a single-mode fiber jumper using physical vapor deposition and focused ion beam milling, followed by dip-coating of a polyhexamethylene biguanide (PHMB) layer as the CO2-sensitive material. Finite-element simulations reveal pronounced electric field enhancement at the nanohole edges and a refractive-index sensitivity of ∼600 nm/RIU. Experimental characterizations show a CO2 sensitivity of 5.77 pm/ppm in the concentration range of 200-600 ppm, with response and recovery times of about 4.5 min and 7 min, respectively. The sensor also exhibits good repeatability and stability over consecutive sensing cycles. This metafiber-based architecture provides a promising and scalable strategy for developing miniaturized, high-performance optical fiber gas sensors.