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Keywords = photonic quantum phase estimation

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17 pages, 489 KB  
Review
Experimental Advances in Phase Estimation with Photonic Quantum States
by Laura T. Knoll, Agustina G. Magnoni and Miguel A. Larotonda
Entropy 2025, 27(7), 712; https://doi.org/10.3390/e27070712 - 1 Jul 2025
Viewed by 1394
Abstract
Photonic quantum metrology has emerged as a leading platform for quantum-enhanced precision measurements. By taking advantage of quantum resources such as entanglement, quantum metrology enables parameter estimation with sensitivities surpassing classical limits. In this review, we describe the basic tools and recent experimental [...] Read more.
Photonic quantum metrology has emerged as a leading platform for quantum-enhanced precision measurements. By taking advantage of quantum resources such as entanglement, quantum metrology enables parameter estimation with sensitivities surpassing classical limits. In this review, we describe the basic tools and recent experimental progress in the determination of an optical phase with a precision that may exceed the shot-noise limit, enabled by the use of nonclassical states of light. We review the state of the art and discuss the challenges and trends in the field. Full article
(This article belongs to the Section Quantum Information)
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18 pages, 1677 KB  
Article
Precision Magnetic Field Sensing with Dual Multi-Wave Atom Interferometer
by Wenhua Yan, Xudong Ren, Minkang Zhou and Zhongkun Hu
Sensors 2023, 23(1), 173; https://doi.org/10.3390/s23010173 - 24 Dec 2022
Cited by 3 | Viewed by 3070
Abstract
Precision magnetic field measurement is widely used for practical applications, fundamental research, and medical purposes, etc. We propose a novel quantum magnetometer based on atoms’ multi-wave (3-wave and 5-wave) Ramsey interference. Our design features high phase sensitivity and can be applied to in [...] Read more.
Precision magnetic field measurement is widely used for practical applications, fundamental research, and medical purposes, etc. We propose a novel quantum magnetometer based on atoms’ multi-wave (3-wave and 5-wave) Ramsey interference. Our design features high phase sensitivity and can be applied to in situ measurements of the magnetic field inside vacuum chambers. The final state detection is designed to be achieved by Raman’s two-photon transition. The analytical solution for applicable interference fringe is presented. Fringe contrast decay due to atom temperature and magnetic field gradient is simulated to estimate reasonable experimental conditions. Sensitivity functions for phase noise and magnetic field noise in a multi-wave system are derived to estimate the noise level required to reach the expected resolution. The validity of the model, dual-channel features on bias estimation, and the quasi-non-destructive detection feature are discussed. Full article
(This article belongs to the Special Issue Optical Measurement Based on Laser and Optical Sensor)
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9 pages, 1629 KB  
Article
Electro-Optical Sampling of Single-Cycle THz Fields with Single-Photon Detectors
by Taylor Shields, Adetunmise C. Dada, Lennart Hirsch, Seungjin Yoon, Jonathan M. R. Weaver, Daniele Faccio, Lucia Caspani, Marco Peccianti and Matteo Clerici
Sensors 2022, 22(23), 9432; https://doi.org/10.3390/s22239432 - 2 Dec 2022
Cited by 6 | Viewed by 4773
Abstract
Electro-optical sampling of Terahertz fields with ultrashort pulsed probes is a well-established approach for directly measuring the electric field of THz radiation. This technique usually relies on balanced detection to record the optical phase shift brought by THz-induced birefringence. The sensitivity of electro-optical [...] Read more.
Electro-optical sampling of Terahertz fields with ultrashort pulsed probes is a well-established approach for directly measuring the electric field of THz radiation. This technique usually relies on balanced detection to record the optical phase shift brought by THz-induced birefringence. The sensitivity of electro-optical sampling is, therefore, limited by the shot noise of the probe pulse, and improvements could be achieved using quantum metrology approaches using, e.g., NOON states for Heisenberg-limited phase estimation. We report on our experiments on THz electro-optical sampling using single-photon detectors and a weak squeezed vacuum field as the optical probe. Our approach achieves field sensitivity limited by the probe state statistical properties using phase-locked single-photon detectors and paves the way for further studies targeting quantum-enhanced THz sensing. Full article
(This article belongs to the Special Issue Terahertz Imaging, Sensing and Communications Technologies)
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30 pages, 556 KB  
Article
Better Heisenberg Limits, Coherence Bounds, and Energy-Time Tradeoffs via Quantum Rényi Information
by Michael J. W. Hall
Entropy 2022, 24(11), 1679; https://doi.org/10.3390/e24111679 - 17 Nov 2022
Cited by 2 | Viewed by 2888
Abstract
An uncertainty relation for the Rényi entropies of conjugate quantum observables is used to obtain a strong Heisenberg limit of the form RMSEf(α)/(N+12), bounding the root mean square [...] Read more.
An uncertainty relation for the Rényi entropies of conjugate quantum observables is used to obtain a strong Heisenberg limit of the form RMSEf(α)/(N+12), bounding the root mean square error of any estimate of a random optical phase shift in terms of average photon number, where f(α) is maximised for non-Shannon entropies. Related simple yet strong uncertainty relations linking phase uncertainty to the photon number distribution, such as ΔΦmaxnpn, are also obtained. These results are significantly strengthened via upper and lower bounds on the Rényi mutual information of quantum communication channels, related to asymmetry and convolution, and applied to the estimation (with prior information) of unitary shift parameters such as rotation angle and time, and to obtain strong bounds on measures of coherence. Sharper Rényi entropic uncertainty relations are also obtained, including time-energy uncertainty relations for Hamiltonians with discrete spectra. In the latter case almost-periodic Rényi entropies are introduced for nonperiodic systems. Full article
(This article belongs to the Special Issue Quantum Mechanics and Its Foundations III)
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12 pages, 2671 KB  
Article
Implementation of Photonic Phase Gate and Squeezed States via a Two-Level Atom and Bimodal Cavity
by Shiqing Tang, Xi Jiang, Xinwen Wang and Xingdong Zhao
Photonics 2022, 9(8), 583; https://doi.org/10.3390/photonics9080583 - 18 Aug 2022
Cited by 1 | Viewed by 2441
Abstract
We propose a theoretical model for realizing a photonic two-qubit phase gate in cavity QED using a one-step process. The fidelity and probability of success of the conditional quantum phase gate is very high in the presence of cavity decay. Our scheme only [...] Read more.
We propose a theoretical model for realizing a photonic two-qubit phase gate in cavity QED using a one-step process. The fidelity and probability of success of the conditional quantum phase gate is very high in the presence of cavity decay. Our scheme only employs one two-level atom, and thus is much simpler than other schemes involving multi-level atoms. This proposal can also be applied to generate two-mode squeezed states; therefore, we give three examples, i.e., the two-mode squeezed vacuum state, two-mode squeezed odd coherent state, and two-mode squeezed even coherent state, to estimate the variance of Duan’s criterion when taking into account cavity decay. It is shown that the variance is smaller than 2 for the three squeezed states in most cases. Furthermore, we utilize logarithmic negativity to measure the entanglement, and find that these squeezed states have very high degrees of entanglement. Full article
(This article belongs to the Special Issue Quantum Optics: Science and Applications)
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14 pages, 835 KB  
Article
Weak Randomness Analysis of Measurement-Device-Independent Quantum Key Distribution with Finite Resources
by Xiao-Lei Jiang, Xiao-Qin Deng, Yang Wang, Yi-Fei Lu, Jia-Ji Li, Chun Zhou and Wan-Su Bao
Photonics 2022, 9(5), 356; https://doi.org/10.3390/photonics9050356 - 18 May 2022
Cited by 7 | Viewed by 2713
Abstract
The ideal quantum key distribution (QKD) protocol requires perfect random numbers for bit encoding and basis selecting. Perfect randomness is of great significance to the practical QKD system. However, due to the imperfection of practical quantum devices, an eavesdropper (Eve) may acquire some [...] Read more.
The ideal quantum key distribution (QKD) protocol requires perfect random numbers for bit encoding and basis selecting. Perfect randomness is of great significance to the practical QKD system. However, due to the imperfection of practical quantum devices, an eavesdropper (Eve) may acquire some random numbers, thus affecting the security of practical systems. In this paper, we analyze the effects of the weak randomness in the measurement-device-independent QKD (MDI-QKD) with finite resources. We analytically derive concise formulas for estimating the lower bound of the single-photon yield and the upper bound of the phase error rate in the case of the weak randomness. The simulation demonstrates that the final secret key rate of MDI-QKD with finite resources is sensitive to state preparation, even with a small proportion of weak randomness, the secure key rate has a noticeable fluctuation. Therefore, the weak randomness of the state preparation may bring additional security risks. In order to ensure the practical security of the QKD system, we are supposed to strengthen the protection of state preparation devices. Full article
(This article belongs to the Special Issue Recent Progress on Quantum Cryptography)
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18 pages, 1044 KB  
Article
Sending or Not-Sending Twin-Field Quantum Key Distribution with Flawed and Leaky Sources
by Yi-Fei Lu, Yang Wang, Mu-Sheng Jiang, Xiao-Xu Zhang, Fan Liu, Hong-Wei Li, Chun Zhou, Shi-Biao Tang, Jia-Yong Wang and Wan-Su Bao
Entropy 2021, 23(9), 1103; https://doi.org/10.3390/e23091103 - 25 Aug 2021
Cited by 10 | Viewed by 3327
Abstract
Twin-field quantum key distribution (TF-QKD) has attracted considerable attention and developed rapidly due to its ability to surpass the fundamental rate-distance limit of QKD. However, the device imperfections may compromise its practical implementations. The goal of this paper is to make it robust [...] Read more.
Twin-field quantum key distribution (TF-QKD) has attracted considerable attention and developed rapidly due to its ability to surpass the fundamental rate-distance limit of QKD. However, the device imperfections may compromise its practical implementations. The goal of this paper is to make it robust against the state preparation flaws (SPFs) and side channels at the light source. We adopt the sending or not-sending (SNS) TF-QKD protocol to accommodate the SPFs and multiple optical modes in the emitted states. We analyze that the flaws of the phase modulation can be overcome by regarding the deviation of the phase as phase noise and eliminating it with the post-selection of phase. To overcome the side channels, we extend the generalized loss-tolerant (GLT) method to the four-intensity decoy-state SNS protocol. Remarkably, by decomposing of the two-mode single-photon states, the phase error rate can be estimated with only four parameters. The practical security of the SNS protocol with flawed and leaky source can be guaranteed. Our results might constitute a crucial step towards guaranteeing the practical implementation of the SNS protocol. Full article
(This article belongs to the Special Issue Practical Quantum Communication)
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12 pages, 1446 KB  
Article
Dephasing Process of a Single Atom Interacting with a Two-Mode Field
by Eied M. Khalil, Kamal Berrada, Sayed Abdel-Khalek, Beida Alsubei and Hichem Eleuch
Entropy 2021, 23(2), 252; https://doi.org/10.3390/e23020252 - 22 Feb 2021
Cited by 2 | Viewed by 2850
Abstract
We consider the interaction of a qubit system with a two-mode field in the presence of multi-photon transition and phase damping effect. We use the master equation to obtain the density operator when the qubit is initially prepared in its excited state and [...] Read more.
We consider the interaction of a qubit system with a two-mode field in the presence of multi-photon transition and phase damping effect. We use the master equation to obtain the density operator when the qubit is initially prepared in its excited state and the field is in a finite-dimensional pair coherent state. The properties of the considered system, such as the population inversion, amount of the mixedness, parameter estimation, and squeezing, are explored for one- and two-photon transitions. The effects of photon addition to the field and phase damping on the evaluation of these quantumness measures are also investigated. Full article
(This article belongs to the Special Issue Quantum Mechanics and Its Foundations)
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18 pages, 1403 KB  
Article
Phase-Sensitive Vector Terahertz Electrometry from Precision Spectroscopy of Molecular Ions
by Florin Lucian Constantin
Atoms 2020, 8(4), 70; https://doi.org/10.3390/atoms8040070 - 7 Oct 2020
Cited by 4 | Viewed by 3051
Abstract
This article proposes a new method for sensing THz waves that can allow electric field measurements traceable to the International System of Units and to the fundamental physical constants by using the comparison between precision measurements with cold trapped HD+ ions and [...] Read more.
This article proposes a new method for sensing THz waves that can allow electric field measurements traceable to the International System of Units and to the fundamental physical constants by using the comparison between precision measurements with cold trapped HD+ ions and accurate predictions of molecular ion theory. The approach exploits the lightshifts induced on the two-photon rovibrational transition at 55.9 THz by a THz wave around 1.3 THz, which is off-resonantly coupled to the HD+ fundamental rotational transition. First, the direction and the magnitude of the static magnetic field applied to the ion trap is calibrated using Zeeman spectroscopy of HD+. Then, a set of lightshifts are converted into the amplitudes and the phases of the THz electric field components in an orthogonal laboratory frame by exploiting the sensitivity of the lightshifts to the intensity, the polarization and the detuning of the THz wave to the HD+ energy levels. The THz electric field measurement uncertainties are estimated for quantum projection noise-limited molecular ion frequency measurements with the current accuracy of molecular ion theory. The method has the potential to improve the sensitivity and accuracy of electric field metrology and may be extended to THz magnetic fields and to optical fields. Full article
(This article belongs to the Section Atom Based Quantum Technology)
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5 pages, 1003 KB  
Proceeding Paper
Machine Learning for Quantum Metrology
by Nicolò Spagnolo, Alessandro Lumino, Emanuele Polino, Adil S. Rab, Nathan Wiebe and Fabio Sciarrino
Proceedings 2019, 12(1), 28; https://doi.org/10.3390/proceedings2019012028 - 23 Aug 2019
Cited by 1 | Viewed by 2661
Abstract
Phase estimation represents a significant example to test the application of quantum theory for enhanced measurements of unknown physical parameters. Several recipes have been developed, allowing to define strategies to reach the ultimate bounds in the asymptotic limit of a large number of [...] Read more.
Phase estimation represents a significant example to test the application of quantum theory for enhanced measurements of unknown physical parameters. Several recipes have been developed, allowing to define strategies to reach the ultimate bounds in the asymptotic limit of a large number of trials. However, in certain applications it is crucial to reach such bound when only a small number of probes is employed. Here, we discuss an asymptotically optimal, machine learning based, adaptive single-photon phase estimation protocol that allows us to reach the standard quantum limit when a very limited number of photons is employed. Full article
(This article belongs to the Proceedings of 11th Italian Quantum Information Science conference (IQIS2018))
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9 pages, 1704 KB  
Article
Synchronization in Quantum Key Distribution Systems
by Anton Pljonkin, Konstantin Rumyantsev and Pradeep Kumar Singh
Cryptography 2017, 1(3), 18; https://doi.org/10.3390/cryptography1030018 - 31 Oct 2017
Cited by 20 | Viewed by 10689
Abstract
In the description of quantum key distribution systems, much attention is paid to the operation of quantum cryptography protocols. The main problem is the insufficient study of the synchronization process of quantum key distribution systems. This paper contains a general description of quantum [...] Read more.
In the description of quantum key distribution systems, much attention is paid to the operation of quantum cryptography protocols. The main problem is the insufficient study of the synchronization process of quantum key distribution systems. This paper contains a general description of quantum cryptography principles. A two-line fiber-optic quantum key distribution system with phase coding of photon states in transceiver and coding station synchronization mode was examined. A quantum key distribution system was built on the basis of the scheme with automatic compensation of polarization mode distortions. Single-photon avalanche diodes were used as optical radiation detecting devices. It was estimated how the parameters used in quantum key distribution systems of optical detectors affect the detection of the time frame with attenuated optical pulse in synchronization mode with respect to its probabilistic and time-domain characteristics. A design method was given for the process that detects the time frame that includes an optical pulse during synchronization. This paper describes the main quantum communication channel attack methods by removing a portion of optical emission. This paper describes the developed synchronization algorithm that takes into account the time required to restore the photodetector’s operation state after the photon has been registered during synchronization. The computer simulation results of the developed synchronization algorithm were analyzed. The efficiency of the developed algorithm with respect to synchronization process protection from unauthorized gathering of optical emission is demonstrated herein. Full article
(This article belongs to the Special Issue Cryptographic Protocols)
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10 pages, 263 KB  
Article
Why Cerenkov Radiation May Not Occur, Even When It Is Allowed by Lorentz-Violating Kinematics
by Brett Altschul
Symmetry 2017, 9(11), 250; https://doi.org/10.3390/sym9110250 - 26 Oct 2017
Cited by 10 | Viewed by 3324
Abstract
In a Lorentz-violating quantum field theory, the energy-momentum relations for the field quanta are typically modified. This affects the kinematics, and processes that are normally forbidden may become allowed. One reaction that clearly becomes kinematically possible when photons’ phase speeds are less than [...] Read more.
In a Lorentz-violating quantum field theory, the energy-momentum relations for the field quanta are typically modified. This affects the kinematics, and processes that are normally forbidden may become allowed. One reaction that clearly becomes kinematically possible when photons’ phase speeds are less than 1 is vacuum Cerenkov radiation. However, in spite of expectations, and in defiance of phase space estimates, a electromagnetic Chern–Simons theory with a timelike Lorentz violation coefficient does not feature any energy losses through Cerenkov emission. There is an unexpected cancelation, made possible by the existence of unstable long-wavelength modes of the field. The fact that the theory possesses a more limited form of gauge symmetry than conventional electrodynamics also plays a role. Full article
(This article belongs to the Special Issue Violation of Lorentz Symmetry)
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