Photonic Bandgap Fiber Microlaser with Dual‐Band Emission for Integrated Optical Tagging and Sensing

Author:

Wang Yanqiong1,Gong Chaoyang2,Yang Xi3,Zhu Tao2,Zhang Ke45,Rao Yun‐Jiang1,Wei Lei6,Gong Yuan1ORCID

Affiliation:

1. Key Laboratory of Optical Fiber Sensing and Communications (Ministry of Education of China) School of Information and Communication Engineering University of Electronic Science and Technology of China Chengdu Sichuan 611731 P. R. China

2. Key Laboratory of Optoelectronic Technology and Systems of the Education Ministry of China College of Optoelectronic Engineering Chongqing University Chongqing 400044 P. R. China

3. State Key Laboratory for Mesoscopic Physics and Frontiers Science Center for Nano‐Optoelectronics School of Physics Peking University Beijing 100871 P. R. China

4. Department of Blood Transfusion Sichuan Cancer Hospital and Institute Chengdu Sichuan 610000 P. R. China

5. School of Medicine University of Electronic Science and Technology of China Chengdu Sichuan 611731 P. R. China

6. School of Electrical and Electronic Engineering Nanyang Technological University Singapore 639798 Singapore

Abstract

AbstractLasers are emerging as novel photonic tags for single‐cell labeling, anticounterfeiting, and encryption technology due to their narrow linewidth, high spectral multiplexing capacity, and superior stimuli‐responsiveness. These laser‐encoded photonic tags mostly distinguish the heterogeneity but do not yet provide both tagging and sensing of biosamples, which is highly desirable for disease screening. Here, a photonic bandgap (PBG) fiber microlaser that works as a 2D tag and an immunosensor is developed. The tubular PBG structure allows strong light–matter interaction and supports dual‐band lasing in the same optical fiber, enabling massive biosample tagging and sensitive biodetection. By encoding the random resonant peaks in the short‐wave band and multiplexing in the spatial domain, a 2D laser tag is generated with a large encoding capacity (>28500). Immunosensing of microalbumin is realized by using the periodic resonant peaks in the long‐wave band, and a limit of detection of 0.06 ng µL−1 is achieved. This work is inspiring for the development of high‐performance, multifunctional integrated devices for disease screening.

Funder

National Natural Science Foundation of China

Higher Education Discipline Innovation Project

Fundamental Research Funds for the Central Universities

Publisher

Wiley

Subject

Condensed Matter Physics,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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