Microscopic Theory of Squeezed Light in Quantum Dot Systems

Fuente: arXiv
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Hauptverfasser: Patel, Sahil, Doan, Sean, Shang, Chen, Grillot, Frederic, Jahnke, Frank, Bowers, John, Moody, Galan, Chow, Weng
Format: Preprint
Veröffentlicht: 2025
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author Patel, Sahil
Doan, Sean
Shang, Chen
Grillot, Frederic
Jahnke, Frank
Bowers, John
Moody, Galan
Chow, Weng
author_facet Patel, Sahil
Doan, Sean
Shang, Chen
Grillot, Frederic
Jahnke, Frank
Bowers, John
Moody, Galan
Chow, Weng
contents We present a cavity-QED theory for generating squeezed light from semiconductor quantum dots (QDs) integrated in microcavities. We formulate equations of motion for an inhomogeneously broadened QD ensemble that is incoherently pumped and simultaneously driven by a coherent seed field, solve for steady states, and compute the output-field quadrature variances. The analysis identifies operating conditions that yield amplitude-quadrature squeezing, with photon-number fluctuations reduced below the coherent-state limit and squeezing levels as large as 5 dB attainable with presently accessible QD and cavity parameters using only ~ 1 uW pump power. We further show that quantum correlations originating from four-wave mixing play a dual role: they both shape the gain spectrum and generate squeezing. These correlations constitute the quantum counterpart of the mean-field (semiclassical) mechanisms responsible for self-mode-locking in QD lasers and the ultra-narrow lasing linewidths achieved under self-injection locking.
format Preprint
id arxiv_https___arxiv_org_abs_2508_15114
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Microscopic Theory of Squeezed Light in Quantum Dot Systems
Patel, Sahil
Doan, Sean
Shang, Chen
Grillot, Frederic
Jahnke, Frank
Bowers, John
Moody, Galan
Chow, Weng
Quantum Physics
We present a cavity-QED theory for generating squeezed light from semiconductor quantum dots (QDs) integrated in microcavities. We formulate equations of motion for an inhomogeneously broadened QD ensemble that is incoherently pumped and simultaneously driven by a coherent seed field, solve for steady states, and compute the output-field quadrature variances. The analysis identifies operating conditions that yield amplitude-quadrature squeezing, with photon-number fluctuations reduced below the coherent-state limit and squeezing levels as large as 5 dB attainable with presently accessible QD and cavity parameters using only ~ 1 uW pump power. We further show that quantum correlations originating from four-wave mixing play a dual role: they both shape the gain spectrum and generate squeezing. These correlations constitute the quantum counterpart of the mean-field (semiclassical) mechanisms responsible for self-mode-locking in QD lasers and the ultra-narrow lasing linewidths achieved under self-injection locking.
title Microscopic Theory of Squeezed Light in Quantum Dot Systems
topic Quantum Physics
url https://arxiv.org/abs/2508.15114