Quantum correlation of microwave two-mode squeezed state generated by nonlinearity of InP HEMT

Abstract This study significantly concentrates on cryogenic InP HEMT high-frequency circuit analysis using quantum theory to find how the transistor nonlinearity can affect the quantum correlation of the modes generated. Firstly, the total Hamiltonian of the circuit is derived, and the dynamic equat...

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Main Author: A. Salmanogli
Format: Article
Language:English
Published: Nature Portfolio 2023-07-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-023-37739-0
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author A. Salmanogli
author_facet A. Salmanogli
author_sort A. Salmanogli
collection DOAJ
description Abstract This study significantly concentrates on cryogenic InP HEMT high-frequency circuit analysis using quantum theory to find how the transistor nonlinearity can affect the quantum correlation of the modes generated. Firstly, the total Hamiltonian of the circuit is derived, and the dynamic equation of the motion contributed is examined using the Heisenberg-Langevin equation. Using the nonlinear Hamiltonian, some components are attached to the intrinsic internal circuit of InP HEMT to address the circuit characteristics fully. The components attached are arisen due to the nonlinearity effects. As a result, the theoretical calculations show that the states generated in the circuit are mixed, and no pure state is produced. Accordingly, the modified circuit generates the two-mode squeezed thermal state, which means one can focus on calculating the Gaussian quantum discord to evaluate quantum correlation. It is also found that the nonlinearity factors (addressed as the nonlinear components in the circuit) can intensely influence the squeezed thermal state by which the quantum discord is changed. Finally, as the primary point, it is concluded that although it is possible to enhance the quantum correlation between modes by engineering the nonlinear components; however, attaining quantum discord greater than unity, entangled microwave photons, seems a challenging task since InP HEMT operates at 4.2 K.
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spelling doaj.art-ae7306c5e1fa428e89f88407ac7426482023-07-23T11:12:10ZengNature PortfolioScientific Reports2045-23222023-07-0113111210.1038/s41598-023-37739-0Quantum correlation of microwave two-mode squeezed state generated by nonlinearity of InP HEMTA. Salmanogli0Engineering Faculty, Electrical and Electronic Department, Cankaya UniversityAbstract This study significantly concentrates on cryogenic InP HEMT high-frequency circuit analysis using quantum theory to find how the transistor nonlinearity can affect the quantum correlation of the modes generated. Firstly, the total Hamiltonian of the circuit is derived, and the dynamic equation of the motion contributed is examined using the Heisenberg-Langevin equation. Using the nonlinear Hamiltonian, some components are attached to the intrinsic internal circuit of InP HEMT to address the circuit characteristics fully. The components attached are arisen due to the nonlinearity effects. As a result, the theoretical calculations show that the states generated in the circuit are mixed, and no pure state is produced. Accordingly, the modified circuit generates the two-mode squeezed thermal state, which means one can focus on calculating the Gaussian quantum discord to evaluate quantum correlation. It is also found that the nonlinearity factors (addressed as the nonlinear components in the circuit) can intensely influence the squeezed thermal state by which the quantum discord is changed. Finally, as the primary point, it is concluded that although it is possible to enhance the quantum correlation between modes by engineering the nonlinear components; however, attaining quantum discord greater than unity, entangled microwave photons, seems a challenging task since InP HEMT operates at 4.2 K.https://doi.org/10.1038/s41598-023-37739-0
spellingShingle A. Salmanogli
Quantum correlation of microwave two-mode squeezed state generated by nonlinearity of InP HEMT
Scientific Reports
title Quantum correlation of microwave two-mode squeezed state generated by nonlinearity of InP HEMT
title_full Quantum correlation of microwave two-mode squeezed state generated by nonlinearity of InP HEMT
title_fullStr Quantum correlation of microwave two-mode squeezed state generated by nonlinearity of InP HEMT
title_full_unstemmed Quantum correlation of microwave two-mode squeezed state generated by nonlinearity of InP HEMT
title_short Quantum correlation of microwave two-mode squeezed state generated by nonlinearity of InP HEMT
title_sort quantum correlation of microwave two mode squeezed state generated by nonlinearity of inp hemt
url https://doi.org/10.1038/s41598-023-37739-0
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