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Squeezed State Generation Using Cryogenic Inp Hemt Nonlinearity

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Date

2023

Journal Title

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Volume Title

Publisher

Iop Publishing Ltd

Open Access Color

Green Open Access

No

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No
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Top 10%
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Average
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Top 10%

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Abstract

This study focuses on generating and manipulating squeezed states with two external oscillators coupled by an InP HEMT operating at cryogenic temperatures. First, the small-signal nonlinear model of the transistor at high frequency at 5 K is analyzed using quantum theory, and the related Lagrangian is theoretically derived. Subsequently, the total quantum Hamiltonian of the system is derived using Legendre transformation. The Hamiltonian of the system includes linear and nonlinear terms by which the effects on the time evolution of the states are studied. The main result shows that the squeezed state can be generated owing to the transistor's nonlinearity; more importantly, it can be manipulated by some specific terms introduced in the nonlinear Hamiltonian. In fact, the nonlinearity of the transistors induces some effects, such as capacitance, inductance, and second-order transconductance, by which the properties of the external oscillators are changed. These changes may lead to squeezing or manipulating the parameters related to squeezing in the oscillators. In addition, it is theoretically derived that the circuit can generate two-mode squeezing. Finally, second-order correlation (photon counting statistics) is studied, and the results demonstrate that the designed circuit exhibits antibunching, where the quadrature operator shows squeezing behavior.

Description

Salmanogli, Ahmad/0000-0002-3587-5582

Keywords

Quantum Theory, Squeezed State, Cryogenic Low Noise Amplifier, Inp Hemt

Fields of Science

0103 physical sciences, 01 natural sciences

Citation

Salmanogli, A. (2023). "Squeezed state generation using cryogenic InP HEMT nonlinearity", Journal of Semiconductors, Vol.44, No.5.

WoS Q

Q2

Scopus Q

Q1
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OpenCitations Citation Count
6

Source

Journal of Semiconductors

Volume

44

Issue

5

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End Page

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Scopus : 8

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Mendeley Readers : 4

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