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Dive into the research topics where Hyunseok Jeong is active.

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Featured researches published by Hyunseok Jeong.


Nature | 2007

Generation of optical 'Schrödinger cats' from photon number states

Alexei Ourjoumtsev; Hyunseok Jeong; Rosa Tualle-Brouri

Schrödinger’s cat is a Gedankenexperiment in quantum physics, in which an atomic decay triggers the death of the cat. Because quantum physics allow atoms to remain in superpositions of states, the classical cat would then be simultaneously dead and alive. By analogy, a ‘cat’ state of freely propagating light can be defined as a quantum superposition of well separated quasi-classical states—it is a classical light wave that simultaneously possesses two opposite phases. Such states play an important role in fundamental tests of quantum theory and in many quantum information processing tasks, including quantum computation, quantum teleportation and precision measurements. Recently, optical Schrödinger ‘kittens’ were prepared; however, they are too small for most of the aforementioned applications and increasing their size is experimentally challenging. Here we demonstrate, theoretically and experimentally, a protocol that allows the generation of arbitrarily large squeezed Schrödinger cat states, using homodyne detection and photon number states as resources. We implemented this protocol with light pulses containing two photons, producing a squeezed Schrödinger cat state with a negative Wigner function. This state clearly exhibits several quantum phase-space interference fringes between the ‘dead’ and ‘alive’ components, and is large enough to become useful for quantum information processing and experimental tests of quantum theory.


Physical Review A | 2002

Efficient quantum computation using coherent states

Hyunseok Jeong; M. S. Kim

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.


Physical Review A | 2005

Nonclassicality of a photon-subtracted Gaussian field

M. S. Kim; E. Park; P. L. Knight; Hyunseok Jeong

We investigate the nonclassicality of a photon-subtracted Gaussian field, which was produced in a recent experiment, using negativity of the Wigner function and the nonexistence of well-behaved positive P function. We obtain the condition to see negativity of the Wigner function for the case including the mixed Gaussian incoming field, the threshold photodetection and the inefficient homodyne measurement. We show how similar the photon-subtracted state is to a superposition of coherent states.


Nature Photonics | 2014

Generation of hybrid entanglement of light

Hyunseok Jeong; Alessandro Zavatta; Minsu Kang; Seung-Woo Lee; Lucas S. Costanzo; Samuele Grandi; Timothy C. Ralph; Marco Bellini

Hyunseok Jeong, Alessandro Zavatta, Minsu Kang, Seung-Woo Lee, Luca S. Costanzo, Samuele Grandi, Timothy C. Ralph & Marco Bellini Center for Macroscopic Quantum Control, Department of Physics and Astronomy, Seoul National University, Seoul, 151-742, Korea Istituto Nazionale di Ottica (INO-CNR), L.go E. Fermi 6, 50125 Florence, Italy LENS and Department of Physics, University of Firenze, 50019 Sesto Fiorentino, Florence, Italy Centre for Quantum Computation and Communication Technology, School of Mathematics and Physics, University of Queensland, Qld 4072, Australia.


Physical Review A | 2006

Greenberger-Horne-Zeilinger-type and W-type entangled coherent states: Generation and Bell-type inequality tests without photon counting

Hyunseok Jeong; Nguyen Ba An

We study Greenberger-Horne-Zeilinger-type (GHZ-type) and W-type three-mode entangled coherent states. Both types of entangled coherent states violate Mermins 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 coherent states, additional nonlinear interactions are needed. We also propose an optical scheme to generate W-type entangled coherent states in free-traveling optical fields. The required resources for the generation are a single-photon source, a coherent state source, beam splitters, phase shifters, photodetectors, and Kerr nonlinearities. Our scheme does not necessarily require strong Kerr nonlinear interactions; i.e., weak nonlinearities can be used for the generation of the W-type entangled coherent states. Furthermore, it is also robust against inefficiencies of the single-photon source and the photon detectors.


Physical Review A | 2004

Conditional production of superpositions of coherent states with inefficient photon detection

Austin P. Lund; Hyunseok Jeong; Timothy C. Ralph; M. S. Kim

It is shown that a linear superposition of two macroscopically distinguishable optical coherent states can be generated using a single photon source and simple all-optical operations. Weak squeezing on a single photon, beam mixing with an auxiliary coherent state, and photon detecting with imperfect threshold detectors are enough to generate a coherent state superposition in a free propagating optical field with a large coherent amplitude (alpha>2) and high fidelity (F>0.99). In contrast to all previous schemes to generate such a state, our scheme does not need photon number resolving measurements nor Kerr-type nonlinear interactions. Furthermore, it is robust to detection inefficiency and exhibits some resilience to photon production inefficiency.


Physical Review A | 2006

Quantum computation using weak nonlinearities: Robustness against decoherence

Hyunseok Jeong

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 because in this case decoherence rapidly increases as the probe field gets larger.


Physical Review A | 2008

Generating "squeezed" superpositions of coherent states using photon addition and subtraction

P. Marek; Hyunseok Jeong; M. S. Kim

We study how photon addition and subtraction can be used to generate squeezed superpositions of coherent states in free-traveling fields (SSCSs) with high fidelities and large amplitudes. It is shown that an arbitrary N-photon subtraction results in the generation of a SSCS with nearly the perfect fidelity (F > 0.999) regardless of the number of photons subtracted. In this case, the amplitude of the SSCS increases as the number of the subtracted photons gets larger. For example, two-photon subtraction from a squeezed vacuum state of 6.1dB can generate a SSCS of � = 1.26, while in the case of the four-photon subtraction a SSCS of a larger amplitude � = 1.65 is obtained under the same condition. When a photon is subtracted from a squeezed vacuum state and another photon is added subsequently, a SSCS with a lower fidelity (F � 0.96) yet higher amplitude (� � 2) can be generated. We analyze some experimental imperfections including inefficiency of the detector used for the photon subtraction.


Physical Review A | 2005

Using weak nonlinearity under decoherence for macroscopic entanglement generation and quantum computation

Hyunseok Jeong

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 experiments based on our analysis. Our discussion shows that the generation of macroscopic entanglement using this approach is within the reach of current technology.


Physical Review A | 2013

Near-deterministic quantum teleportation and resource-efficient quantum computation using linear optics and hybrid qubits

Seung-Woo Lee; Hyunseok Jeong

We propose a scheme to realize deterministic quantum teleportation using linear optics and hybrid qubits. It enables one to efficiently perform teleportation and universal linear-optical gate operations in a simple and near-deterministic manner using all-optical hybrid entanglement as off-line resources. Our analysis shows that our approach outperforms previous ones when considering both the resource requirements and fault-tolerance limits.

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Seung-Woo Lee

Korea Institute for Advanced Study

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Hyuk-Joon Kwon

Seoul National University

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M. S. Kim

Imperial College London

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Mauro Paternostro

Queen's University Belfast

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Chang-Woo Lee

Seoul National University

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Minsu Kang

Seoul National University

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Chae-Yeun Park

Seoul National University

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Jeongho Bang

Korea Institute for Advanced Study

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