All-Optical Nanosensor for Displacement Detection in Mechanical Applications

Author:

Escandell Lorena1ORCID,Álvarez-Rodríguez Carlos1,Barreda Ángela2ORCID,Zaera Ramón3,García-Cámara Braulio1ORCID

Affiliation:

1. Group of Displays and Photonics Applications, Carlos III University of Madrid, Avda. de la Universidad, 30, Leganés, 28911 Madrid, Spain

2. Institute of Solid State Physics, Friedrich Schiller University Jena, Helmholtzweg 3, 07743 Jena, Germany

3. Department of Continuum Mechanics and Structural Analysis, Carlos III University of Madrid, Avda. de la Universidad, 30, Leganés, 28911 Madrid, Spain

Abstract

In this paper, we propose the design of an optical system based on two parallel suspended silicon nanowires that support a range of optical resonances that efficiently confine and scatter light in the infrared range as the base of an all-optical displacement sensor. The effects of the variation of the distance between the nanowires are analyzed. The simulation models are designed by COMSOL Multiphysics software, which is based on the finite element method. The diameter of the nanocylinders (d = 140 nm) was previously optimized to achieve resonances at the operating wavelengths (λ = 1064 nm and 1310 nm). The results pointed out that a detectable change in their resonant behavior and optical interaction was achieved. The proposed design aims to use a simple light source using a commercial diode laser and simplify the readout systems with a high sensitivity of 1.1 × 106 V/m2 and 1.14 × 106 V/m2 at 1064 nm and 1310 nm, respectively. The results may provide an opportunity to investigate alternative designs of displacement sensors from an all-optical approach and explore their potential use.

Funder

Spanish Research Agency (AEI)

European Fund for Regional Development

Comunidad de Madrid by SINFOTON2-CM

Deutsche Forschungsgemeinschaft (DFG, German Research Foundation)

Madrid Government (Comunidad de Madrid-Spain) under the Multiannual Agreement with UC3M in the line of Excellence of University Professors

V PRICIT (Regional Programme of Research and Technological Innovation)

Publisher

MDPI AG

Reference41 articles.

1. Ahoulou, S., Perret, E., and Nedelec, J.-M. (2021). Functionalization and Characterization of Silicon Nanowires for Sensing Applications: A Review. Nanomaterials, 11.

2. Silicon nanowires: Where mechanics and optics meet at the nanoscale;Ramos;Sci. Rep.,2013

3. High sensitivity deflection detection of nanowires;Sanii;Phys. Rev. Lett.,2010

4. Nano-opto-electro-mechanical systems;Midolo;Nat. Nanotechnol.,2018

5. Han, B., Tomer, V.K., Nguyen, T.A., Farmani, A., and Singh, P.K. (2020). Nanosensor for Health Care. Nanosensors for Smart Cities, Elsevier.

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