Thermo‐Optical Bistability Enabled by Bound States in The Continuum in Silicon Metasurfaces

Author:

Barulin Alexander12,Pashina Olesia3,Riabov Daniil3,Sergaeva Olga34,Sadrieva Zarina3,Shcherbakov Alexey3,Rutckaia Viktoriia56,Schilling Jörg5,Bogdanov Andrey37,Sinev Ivan38,Chernov Alexander12,Petrov Mihail3ORCID

Affiliation:

1. Russian Quantum Center Skolkovo Moscow 143025 Russia

2. Center for Photonics and 2D Materials Moscow Institute of Physics and Technology Dolgoprudny 141700 Russia

3. School of Physics and Engineering ITMO University Saint‐Petersburg 197101 Russia

4. Department of Information Engineering University of Brescia Brescia 25123 Italy

5. Martin‐Luther‐University of Halle‐Wittenberg 06120 Halle (Saale) Germany

6. Advanced Science Research Center City University of New York New York 10031 USA

7. Qingdao Innovation and Development Center of Harbin Engineering University Qingdao 266404 China

8. Experimentelle Physik 2 Technische Universität Dortmund 44227 Dortmund Germany

Abstract

AbstractThe control of light through all‐optical means is a fundamental challenge in nanophotonics and a key effect in optical switching and logic. The optical bistability effect enables this control and can be observed in various planar photonic systems such as microdisk and photonic crystal cavities and waveguides. However, the recent advancements in flat optics with wavelength‐thin optical elements require nonlinear elements based on metastructures and metasurfaces. The performance of these systems can be enhanced with high‐Q bound states in the continuum (BIC), which leads to intense harmonic generation, improved light‐matter coupling, and pushes forward sensing limits. This study reports enhanced thermo‐optical nonlinearity and the observation of optical bistability in an all‐dielectric metasurface membrane with BIC. Unlike many other nanophotonic platforms, metasurfaces allow for fine control of the quality factor of the BIC resonance by managing the radiative losses. This provides an opportunity to control the parameters of the observed hysteresis loop and even switch from bistability to optical discrimination by varying the angle of incidence. Additionally, this work proposes a mechanism of nonlinear critical coupling that establishes the conditions for maximal hysteresis width and minimal switching power, which has not been reported before. The study suggests that all‐dielectric metasurfaces supporting BICs can serve as a flat‐optics platform for optical switching and modulation based on strong thermo‐optical nonlinearity.

Funder

HORIZON EUROPE Marie Sklodowska-Curie Actions

Russian Science Foundation

Publisher

Wiley

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