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Hyun-Seok Jeong

Seoul National University · Computer Science

About the Lab

Professor Hyun-Seok Jeong's research lab specializes in theoretical and quantum optical studies focused on continuous-variable quantum information processing. The lab explores quantum entanglement, nonlocality, and quantum computation using optical coherent states and macroscopic superpositions, with an emphasis on robustness against decoherence and experimental feasibility. Key research directions include quantum teleportation with coherent states, entanglement concentration, Bell inequality violations in continuous-variable systems, and the role of weak nonlinearities in generating macroscopic quantum states. The lab also develops practical optical schemes for generating and manipulating entangled coherent states using linear optics and threshold detectors.

continuous-variable quantum informationentanglement in coherent statesquantum teleportationnonlocality in opticsdecoherence resilience

Research Overview

Papers
261
Total Citations
6,718
Papers (5y)
59
Primary Field
Computer Science

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
59total
2022
2023
2024
2025
2026
Citations per year (5y)
235total
20222023202420252026

Selected Papers

15
1
Article|399 citations·2002
Efficient quantum computation using coherent states
Hyunseok Jeong, M. S. Kim
SJR Q1Physical Review AOA

We study universal quantum computation using optical coherent states. A teleportation scheme for a coherent-state qubit is developed and applied to gate operations. This scheme is shown to be robust to detection inefficiency.

Artificial IntelligenceComputer Science
2
Article|315 citations·2001
Quantum-information processing for a coherent superposition state via a mixedentangled coherent channel
Hyunseok Jeong, M. S. Kim, Jinhyoung Lee
SJR Q1Physical Review AOA

An entangled two-mode coherent state is studied within the framework of 2\ifmmode\times\else\texttimes\fi{}2-dimensional Hilbert space. An entanglement concentration scheme based on joint Bell-state measurements is worked out. When the entangled coherent state is embedded in vacuum environment, its entanglement is degraded but not totally lost. It is found that the larger the initial coherent amplitude, the faster entanglement decreases. We investigate a scheme to teleport a coherent superpositi

Artificial IntelligenceComputer Science
3
Article|218 citations·2014
Generation of hybrid entanglement of light
Hyunseok Jeong, Alessandro Zavatta, Minsu Kang, Seung-Woo Lee, Luca Costanzo, Samuele Grandi, Timothy C. Ralph, Marco Bellini
SJR Q1Nature PhotonicsOA
Artificial IntelligenceComputer Science
4
Article|145 citations·2003
Quantum nonlocality test for continuous-variable states with dichotomic observables
Hyunseok Jeong, Wonmin Son, M. S. Kim, Doyeol Ahn, Časlav Brukner
SJR Q1Physical Review AOA

There have been theoretical and experimental studies on quantum nonlocality for continuous variables, based on dichotomic observables. In particular, we are interested in two cases of dichotomic observables for the light field of continuous variables: One case is even and odd numbers of photons and the other case is no photon and the presence of photons. We analyze various observables to give the maximum violation of Bell's inequalities for continuous-variable states. We discuss an observable wh

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
5
Article|129 citations·2005
Using weak nonlinearity under decoherence for macroscopic entanglement generation and quantum computation
Hyunseok Jeong
SJR Q1Physical Review AOA

Recently, there have been several suggestions that weak Kerr nonlinearity can be used for generation of macroscopic superpositions and entanglement and for linear optics quantum computation. However, it is not immediately clear that this approach can overcome decoherence effects. Our numerical study shows that nonlinearity of weak strength could be useful for macroscopic entanglement generation and quantum gate operations in the presence of decoherence. We suggest specific values for real experi

Artificial IntelligenceComputer Science
6
Article|117 citations·2006
Greenberger-Horne-Zeilinger–type andW-type entangled coherent states: Generation and Bell-type inequality tests without photon counting
Hyunseok Jeong, Nguyen Ba An
SJR Q1Physical Review AOA

We study Greenberger-Horne-Zeilinger--type (GHZ-type) and $W$-type three-mode entangled coherent states. Both types of entangled coherent states violate Mermin's version of the Bell inequality with threshold photon detection (i.e., without photon counting). Such an experiment can be performed using linear optics elements and threshold detectors with significant Bell violations for GHZ-type entangled coherent states. However, to demonstrate Bell-type inequality violations for $W$-type entangled c

Artificial IntelligenceComputer Science
7
Article|100 citations·2006
Quantum computation using weak nonlinearities: Robustness against decoherence
Hyunseok Jeong
SJR Q1Physical Review AOA

We investigate decoherence effects in the recently suggested quantum-computation scheme using weak nonlinearities, strong probe coherent fields, detection, and feedforward methods. It is shown that in the weak-nonlinearity-based quantum gates, decoherence in nonlinear media can be made arbitrarily small simply by using arbitrarily strong probe fields, if photon-number-resolving detection is used. On the contrary, we find that homodyne detection with feedforward is not appropriate for this scheme

Artificial IntelligenceComputer Science
8
Article|100 citations·2000
Dynamics of nonlocality for a two-mode squeezed state in a thermal environment
Hyunseok Jeong, Jinhyoung Lee, M. S. Kim
SJR Q1Physical Review AOA

We investigate the time evolution of nonlocality for a two-mode squeezed state in a thermal environment. The initial two-mode pure squeezed state is nonlocal with a stronger nonlocality for a larger degree of squeezing. It is found that the larger the degree of initial squeezing, the more rapidly the squeezed state loses its nonlocality. We explain this by the rapid destruction of quantum coherence for the strongly squeezed state.

Artificial IntelligenceComputer Science
9
Article|90 citations·2004
Simulation of quantum random walks using the interference of a classical field
Hyunseok Jeong, Mauro Paternostro, M. S. Kim
SJR Q1Physical Review AOA

We suggest a theoretical scheme for the simulation of quantum random walks on a line using beam splitters, phase shifters, and photodetectors. Our model enables us to simulate a quantum random walk using of the wave nature of classical light fields. Furthermore, the proposed setup allows the analysis of the effects of decoherence. The transition from a pure mean-photon-number distribution to a classical one is studied varying the decoherence parameters.

Artificial IntelligenceComputer Science
10
Article|81 citations·2004
Generation of macroscopic superposition states with small nonlinearity
Hyunseok Jeong, M. S. Kim, Timothy C. Ralph, Byoung S. Ham
SJR Q1Physical Review AOA

We suggest a scheme to generate a macroscopic superposition state (``Schr\"odinger cat state'') of a free-propagating optical field using a beam splitter, homodyne measurement, and a very small Kerr nonlinear effect. Our scheme makes it possible to reduce considerably the required nonlinear effect to generate an optical cat state using simple and efficient optical elements.

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
11
Article|75 citations·2005
Production of superpositions of coherent states in traveling optical fields with inefficient photon detection
Hyunseok Jeong, Austin P. Lund, Timothy C. Ralph
SJR Q1Physical Review AOA

We develop an all-optical scheme to generate superpositions of macroscopically distinguishable coherent states in traveling optical fields. It nondeterministically distills coherent-state superpositions (CSS's) with large amplitudes out of CSS's with small amplitudes using inefficient photon detection. The small CSS's required to produce CSS's with larger amplitudes are extremely well approximated by squeezed single photons. We discuss some remarkable features of this scheme: it effectively puri

Artificial IntelligenceComputer Science
12
Article|71 citations·2009
Failure of Local Realism Revealed by Extremely-Coarse-Grained Measurements
Hyunseok Jeong, Mauro Paternostro, Timothy C. Ralph
SJR Q1Physical Review LettersOA

We show that failure of local realism can be revealed to observers for whom only extremely-coarse-grained measurements are available. In our instances, Bell's inequality is violated even up to the maximum limit while both the local measurements and the initial local states under scrutiny approach the classical limit. Furthermore, we can observe failure of local realism when an inequality enforced by nonlocal realistic theories is satisfied. This suggests that locality alone may be violated while

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
13
Article|66 citations·2014
Coarsening Measurement References and the Quantum-to-Classical Transition
Hyunseok Jeong, Youngrong Lim, M. S. Kim
SJR Q1Physical Review LettersOA

We investigate the role of inefficiency in quantum measurements in the quantum-to-classical transition, and consistently observe the quantum-to-classical transition by coarsening the references of the measurements (e.g., when and where to measure). Our result suggests that the definition of measurement precision in quantum theory should include the degree of the observer's ability to precisely control the measurement references.

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
14
Article|61 citations·2006
Transfer of Nonclassical Properties from a Microscopic Superposition to Macroscopic Thermal States in the High Temperature Limit
Hyunseok Jeong, Timothy C. Ralph
SJR Q1Physical Review LettersOA

We present several examples where prominent quantum properties are transferred from a microscopic superposition to thermal states at high temperatures. Our work is motivated by an analogy of Schrödinger's cat paradox, where the state corresponding to the virtual cat is a mixed thermal state with a large average photon number. Remarkably, quantum entanglement can be produced between thermal states with nearly the maximum Bell-inequality violation even when the temperatures of both modes approach

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
15
Article|53 citations·2002
Purification of entangled coherent states
Hyunseok Jeong, M. S. Kim
SJR Q3Quantum Information and Computation

We suggest an entanglement purification scheme for mixed entangled coherent states using 50-50 beam splitters and photodetectors. This scheme is directly applicable for mixed entangled coherent states of the Werner type, and can be useful for general mixed states using additional nonlinear interactions. We apply our scheme to entangled coherent states decohered in a vacuum environment and find the decay time until which they can be purified.

Artificial IntelligenceComputer Science

Research Areas

Artificial IntelligenceAtomic and Molecular Physics, and OpticsComputational MechanicsElectrical and Electronic EngineeringStatistical and Nonlinear PhysicsBiophysics

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