Optimal gain sensing of quantum-limited phase-insensitive amplifiers
Phase-insensitive optical amplifiers uniformly amplify each quadrature of an input field and are of both fundamental and technological importance. We find the quantum limit on the precision of estimating the gain of a quantum-limited phase-insensitive amplifier using a multimode probe that may also...
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sg-ntu-dr.10356-1612642023-02-28T20:11:26Z Optimal gain sensing of quantum-limited phase-insensitive amplifiers Nair, Ranjith Tham, Guo Yao Gu, Mile School of Physical and Mathematical Sciences Centre for Quantum Technologies, National University of Singapore Nanyang Quantum Hub Complexity Institute Science::Physics Ancilla Systems Input Field Phase-insensitive optical amplifiers uniformly amplify each quadrature of an input field and are of both fundamental and technological importance. We find the quantum limit on the precision of estimating the gain of a quantum-limited phase-insensitive amplifier using a multimode probe that may also be entangled with an ancilla system. In stark contrast to the sensing of loss parameters, the average photon number N and number of input modes M of the probe are found to be equivalent and interchangeable resources for optimal gain sensing. All pure-state probes whose reduced state on the input modes to the amplifier is diagonal in the multimode number basis are proven to be quantum optimal under the same gain-independent measurement. We compare the best precision achievable using classical probes to the performance of an explicit photon-counting-based estimator on quantum probes and show that an advantage exists even for single-photon probes and inefficient photodetection. A closed-form expression for the energy-constrained Bures distance between two product amplifier channels is also derived. Ministry of Education (MOE) National Research Foundation (NRF) Published version This work is supported by the Singapore Ministry of Education Tier 1 Grant No. RG162/19 (S), the National Research Foundation (NRF) Singapore under its NRFF Fellow program (Award No. NRF-NRFF2016-02), the Singapore Ministry of Education Tier 2 Grant No. T2EP50221-0014, and the FQXi R-710-000-146- 720 Grant “Are quantum agents more energetically efficient at making predictions?” from the Foundational Questions Institute and Fetzer Franklin Fund (a donor-advised fund of Silicon Valley Community Foundation). 2022-08-23T01:55:23Z 2022-08-23T01:55:23Z 2022 Journal Article Nair, R., Tham, G. Y. & Gu, M. (2022). Optimal gain sensing of quantum-limited phase-insensitive amplifiers. Physical Review Letters, 128(18), 180506-. https://dx.doi.org/10.1103/PhysRevLett.128.180506 0031-9007 https://hdl.handle.net/10356/161264 10.1103/PhysRevLett.128.180506 35594116 2-s2.0-85130175721 18 128 180506-1 180506-7 en RG162/19 (S) NRF-NRFF2016-02 T2EP50221-0014 Physical Review Letters © 2022 American Physical Society. All rights reserved. This paper was published in Physical Review Letters and is made available with permission of American Physical Society. application/pdf |
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Science::Physics Ancilla Systems Input Field Nair, Ranjith Tham, Guo Yao Gu, Mile Optimal gain sensing of quantum-limited phase-insensitive amplifiers |
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Phase-insensitive optical amplifiers uniformly amplify each quadrature of an input field and are of both fundamental and technological importance. We find the quantum limit on the precision of estimating the gain of a quantum-limited phase-insensitive amplifier using a multimode probe that may also be entangled with an ancilla system. In stark contrast to the sensing of loss parameters, the average photon number N and number of input modes M of the probe are found to be equivalent and interchangeable resources for optimal gain sensing. All pure-state probes whose reduced state on the input modes to the amplifier is diagonal in the multimode number basis are proven to be quantum optimal under the same gain-independent measurement. We compare the best precision achievable using classical probes to the performance of an explicit photon-counting-based estimator on quantum probes and show that an advantage exists even for single-photon probes and inefficient photodetection. A closed-form expression for the energy-constrained Bures distance between two product amplifier channels is also derived. |
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School of Physical and Mathematical Sciences |
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School of Physical and Mathematical Sciences Nair, Ranjith Tham, Guo Yao Gu, Mile |
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Article |
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Nair, Ranjith Tham, Guo Yao Gu, Mile |
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Nair, Ranjith |
title |
Optimal gain sensing of quantum-limited phase-insensitive amplifiers |
title_short |
Optimal gain sensing of quantum-limited phase-insensitive amplifiers |
title_full |
Optimal gain sensing of quantum-limited phase-insensitive amplifiers |
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Optimal gain sensing of quantum-limited phase-insensitive amplifiers |
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Optimal gain sensing of quantum-limited phase-insensitive amplifiers |
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optimal gain sensing of quantum-limited phase-insensitive amplifiers |
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2022 |
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https://hdl.handle.net/10356/161264 |
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