Fabry–Perot interferometer; Femtosecond laser; Fiber gratings; Force; optical fiber force sensor; Optical fiber sensors; Optical fibers; Probes; Sensitivity; Sensors; two-photon polymerization; Fabry-Perot; Femtoseconds; Fiber Sensor; Optical fiber force sensor; Optical-; Two photon polymerization; Atomic and Molecular Physics, and Optics
Abstract :
[en] In this paper, we report fabrication of highly sensitive nano- and micro-force probes on the end facet of optical fibers using two-photon-polymerization (TPP) 3D printing technique. These probes are tailored to accurately detect forces at the nano- and micro-Newton scales. The architecture of these sensors incorporates Fabry-Perot (F-P) interferometric elements combined with elastic supporting brackets that compress under minimal forces. Our results indicated a sensitivity of 0.185 nm/μN for the probes, with a measurement capability extending beyond 100 μN. We also performed numerical simulations using the finite element method to verify the deformation of F-P cavities due to applied forces. As a proof-of-principle demonstration, we used the microforce probe to measure the Young's modulus of a copper wire. This novel microforce sensor is designed for the precise measurement of contact forces, aiding in the evaluation of mechanical properties in biological samples and flexible materials. Advantages of the developed sensor include its high sensitivity, compact size, ease of integration with micro-electromechanical systems, considerable deflection capacity for contour analysis, straightforward operational principle, and broad dynamic range. We anticipate that this new sensing approach will prove extremely valuable in precision biomedical and materials science research.
Disciplines :
Materials science & engineering
Author, co-author :
Liu, Yang ✱
Zheng, Rongcheng ✱
Peng, Sisu
Xin, Zixuan
Xu, Guodong
Wei, Heming
Caucheteur, Christophe ; Université de Mons - UMONS > Faculté Polytechnique > Service d'Electromagnétisme et Télécommunications
Hu, Xuehao ; Université de Mons - UMONS > Recherche > Service ERC Unit - Advanced Photonic
Qu, Hang
✱ These authors have contributed equally to this work.
Research Institute for Materials Science and Engineering
Funders :
Fonds De La Recherche Scientifique Senior Research Associate Position and Postdoctoral Researcher grant Science and Technology Department of Guangdong Province Guangxi Key laboratory of Optoelectronic Information Processing Fonds de la Recherche Scientifique
Funding text :
This paragraph of the first footnote will contain the date on which you submitted your paper for review, which is populated by IEEE. This work was supported by the Science and Technology Department of Guangdong Province (2022A1515012571) and the Fonds de la Recherche Scientifique (F.R.S.-FNRS). (Yang Liu and Rongcheng Zheng contributed equally to this work.) (Corresponding author: Xuehao Hu and Hang Qu.) Yang Liu, Rongcheng Zheng, Sisu Peng, Zixuan Xin and Hang Qu are with the Research Center for Advanced Optics and Photoelectronics, Department of Physics, College of Science, Shantou University, Shantou 515063, China (e-mail: 21yliu2@stu.edu.cn; 21rczheng@stu.edu.cn; 21sspeng@stu.edu.cn;