Optomechanical Coupling Optimization in Engineered Nanocavities

Author:

Edelstein S.1,Gomis‐Bresco J.2,Arregui G.2,Koval P.3,Lanzillotti‐Kimura N. D.4,Torrent D.5,Sotomayor‐Torres C. M.26,García P. D.1ORCID

Affiliation:

1. Instituto de Ciencia de Materiales de Madrid (ICMM) Consejo Superior de Investigaciones Científicas (CSIC) Sor Juana Inés de la Cruz 3 Madrid 28049 Spain

2. Catalan Institute of Nanoscience and Nanotechnology (ICN2) CSIC and The Barcelona Institute of Science and Technology Campus UAB, Bellaterra Barcelona 08193 Spain

3. Simune Atomistics Tolosa Hiribidea 76 Donostia 20018 Spain

4. Université Paris‐Saclay, CNRS Centre de Nanosciences et de Nanotechnologies Palaiseau 91120 France

5. GROC, UJI Institut de Noves Tecnologies de la Imatge (INIT) Universitat Jaume I Casteló de la Plana 12071 Spain

6. ICREA ‐ Institució Catalana de Recerca i Estudis Avançats Barcelona 08010 Spain

Abstract

AbstractIn optomechanics, the interaction between light and matter is enhanced by engineering cavities where the electromagnetic field and the mechanical displacement are confined simultaneously within the same volume. This leads to a wide range of interesting phenomena, such as optomechanically induced transparency and the cooling of macroscopic objects to their lowest possible motion state. In this manuscript, the focus is on designed optomechanical cavities exploiting heterostructures in air‐slot photonic‐crystal waveguides, incorporating different hole shapes and dimensions to engineer and control their optomechanical properties. The aim is to maximize the optical quality factor of the optical cavity, while ensuring optical mode volumes below the diffraction limit. These optimized optical modes interact with in‐plane motional degrees of freedom of the structures achieving high optomechanical coupling rates, thus opening up the possibility of mechanical amplification, nonlinear dynamics and chaos through the optomechanical back‐action.

Funder

Swine Innovation Porc

Ministerio de Ciencia e Innovación

H2020 European Research Council

Publisher

Wiley

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