Guo Yanhong, Li Zhaoyu, An Ning, Guo Yongzheng, Wang Yuchen, Yuan Yusen, Zhang Hao, Tan Teng, Wu Caihao, Peng Bo, Soavi Giancarlo, Rao Yunjiang, Yao Baicheng
Key Laboratory of Optical Fibre Sensing and Communications (Education Ministry of China), University of Electronic Science and Technology of China, Chengdu, 611731, China.
State Key Laboratory of Electronic Thin Film and Integrated Devices, University of Electronic Science and Technology of China, Chengdu, 611731, China.
Adv Mater. 2022 Dec;34(51):e2207777. doi: 10.1002/adma.202207777. Epub 2022 Nov 14.
Optical-microcavity-enhanced light-matter interaction offers a powerful tool to develop fast and precise sensing techniques, spurring applications in the detection of biochemical targets ranging from cells, nanoparticles, and large molecules. However, the intrinsic inertness of such pristine microresonators limits their spread in new fields such as gas detection. Here, a functionalized microlaser sensor is realized by depositing graphene in an erbium-doped over-modal microsphere. By using a 980 nm pump, multiple laser lines excited in different mode families of the microresonator are co-generated in a single device. The interference between these splitting mode lasers produce beat notes in the electrical domain (0.2-1.1 MHz) with sub-kHz accuracy, thanks to the graphene-induced intracavity backward scattering. This allows for lab-free multispecies gas identification from a mixture, and ultrasensitive gas detection down to individual molecule.
光学微腔增强的光与物质相互作用为开发快速精确的传感技术提供了一个强大的工具,推动了在从细胞、纳米颗粒到大分子等生化目标检测中的应用。然而,这种原始微谐振器的固有惰性限制了它们在气体检测等新领域的推广。在此,通过在掺铒过模微球中沉积石墨烯实现了一种功能化微激光传感器。通过使用980纳米泵浦,在微谐振器的不同模式族中激发的多条激光线在单个器件中共同产生。由于石墨烯引起的腔内后向散射,这些分裂模式激光器之间的干涉在电域(0.2 - 1.1兆赫兹)产生具有亚千赫兹精度的拍频。这使得能够从混合物中进行无实验室的多物种气体识别,并实现低至单个分子的超灵敏气体检测。