Axially slow-variation microbubble resonators fabricated by an improved arc discharge method for strain sensing applications

Author:

Lv Gan,Xie Chengfeng1ORCID,Wang Mengyu1ORCID,Guo Zhuang1,Wei Bin1,Shi Jiulin1,He Xingdao1

Affiliation:

1. Jiangxi Engineering Laboratory for Optoelectronics Testing Technology

Abstract

In this paper, we proposed an axially slow-variation microbubble resonator fabricated by an improved arc discharge method and applied to axial strain sensing. The prepared resonators are characterized by ultra-thin wall thickness and axial slow-variation. The wall thickness was experimentally measured to reach 938 nm and maintain a quality factor of an optical mode as large as 7.36 ×107. The main factors affecting the strain sensitivity of the microbubble resonators are investigated theoretically and experimentally. Experimentally, the maximum sensitivity measured was 13.08pm/µε, which is three times higher than the microbubble resonators without this method. The device is simple to prepare and possesses ultra-thin wall thickness. It is promising for applications in high-precision sensing, such as single molecule and biological sensing.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Jiangxi Province

Chinese Aeronautical Establishment

Jiangxi Provincial Department of Education Science and Technology Project

Publisher

Optica Publishing Group

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