Quantum and thermal noise in coupled non-hermitian waveguide systems with different models of gain and loss

Date

2025-01-03

Director

Publisher

De Gruyter
Acceso abierto / Sarbide irekia
Artículo / Artikulua
Versión aceptada / Onetsi den bertsioa

Project identifier

  • European Commission/Horizon 2020 Framework Programme/948504/ openaire
  • AEI/Plan Estatal de Investigación Científica y Técnica y de Innovación 2017-2020/RYC2018-024123-I/
Impacto
OpenAlexGoogle Scholar
No disponible en Scopus

Abstract

Non-Hermitian (NH) photonic systems leverage gain and loss to open new directions for nanophotonic technologies. However, the quantum and thermal noise intrinsically associated with gain/loss affects the eigenvalue/eigenvector structure of NH systems, and thus the existence of exceptional points, as well as the practical noise performance of these systems. Here, we present a comparative analysis of the impact of different gain and loss mechanisms on the noise generated in gain-loss compensated NH waveguide systems. Our results highlight important differences in the eigenvalue/eigenvector structure, noise power, photon statistics and squeezing. At the same time, we identify some universal properties such as the occurrence of phase-transition points in parameter space and intriguing phenomena related to them, including coalescence of pairs of eigenvectors, gain-loss compensation, and linear scaling of the noise with the length of the waveguide. We believe that these results contribute to a better understanding of the impact of the gain/loss mechanism on the noise generated in NH systems.

Description

Keywords

Exceptional points, Gain-loss compensation, Non-Hermitian photonics, Quantum noise, Squeezing, Thermal noise

Department

Ingeniería Eléctrica, Electrónica y de Comunicación / Ingeniaritza Elektrikoa, Elektronikoa eta Telekomunikazio Ingeniaritza / Institute of Smart Cities - ISC

Faculty/School

Degree

Doctorate program

item.page.cita

Hernández O., Liberal I. (2025) Quantum and thermal noise in coupled non-hermitian waveguide systems with different models of gain and loss. Nanophotonics, 14(1), 81-94. https://doi.org/10.1515/nanoph-2024-0512

item.page.rights

© 2024 the author(s). This work is licensed under the Creative Commons Attribution 4.0 International License.

Licencia

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