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Dive into the research topics where Min-Sung Kang is active.

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Featured researches published by Min-Sung Kang.


Quantum Information Processing | 2017

Schemes generating entangled states and entanglement swapping between photons and three-level atoms inside optical cavities for quantum communication

Jino Heo; Min-Sung Kang; Chang Ho Hong; Hyeon Yang; Seong-Gon Choi

We propose quantum information processing schemes based on cavity quantum electrodynamics (QED) for quantum communication. First, to generate entangled states (Bell and Greenberger–Horne–Zeilinger [GHZ] states) between flying photons and three-level atoms inside optical cavities, we utilize a controlled phase flip (CPF) gate that can be implemented via cavity QED). Subsequently, we present an entanglement swapping scheme that can be realized using single-qubit measurements and CPF gates via optical cavities. These schemes can be directly applied to construct an entanglement channel for a communication system between two users. Consequently, it is possible for the trust center, having quantum nodes, to accomplish the linked channel (entanglement channel) between the two separate long-distance users via the distribution of Bell states and entanglement swapping. Furthermore, in our schemes, the main physical component is the CPF gate between the photons and the three-level atoms in cavity QED, which is feasible in practice. Thus, our schemes can be experimentally realized with current technology.


Quantum Information Processing | 2016

Discrete quantum Fourier transform using weak cross-Kerr nonlinearity and displacement operator and photon-number-resolving measurement under the decoherence effect

Jino Heo; Min-Sung Kang; Chang Ho Hong; Hyeon Yang; Seong-Gon Choi

We present a scheme for implementing discrete quantum Fourier transform (DQFT) with robustness against the decoherence effect using weak cross-Kerr nonlinearities (XKNLs). The multi-photon DQFT scheme can be achieved by operating the controlled path and merging path gates that are formed with weak XKNLs and linear optical devices. To enhance feasibility under the decoherence effect, in practice, we utilize a displacement operator and photon-number-resolving measurement in the optical gate using XKNLs. Consequently, when there is a strong amplitude of the coherent state, we demonstrate that it is possible to experimentally implement the DQFT scheme, utilizing current technology, with a certain probability of success under the decoherence effect.


Scientific Reports | 2017

Implementation of controlled quantum teleportation with an arbitrator for secure quantum channels via quantum dots inside optical cavities

Jino Heo; Chang Ho Hong; Min-Sung Kang; Hyeon Yang; Hyung-Jin Yang; Jong-Phil Hong; Seong-Gon Choi

We propose a controlled quantum teleportation scheme to teleport an unknown state based on the interactions between flying photons and quantum dots (QDs) confined within single- and double-sided cavities. In our scheme, users (Alice and Bob) can teleport the unknown state through a secure entanglement channel under the control and distribution of an arbitrator (Trent). For construction of the entanglement channel, Trent utilizes the interactions between two photons and the QD-cavity system, which consists of a charged QD (negatively charged exciton) inside a single-sided cavity. Subsequently, Alice can teleport the unknown state of the electron spin in a QD inside a double-sided cavity to Bob’s electron spin in a QD inside a single-sided cavity assisted by the channel information from Trent. Furthermore, our scheme using QD-cavity systems is feasible with high fidelity, and can be experimentally realized with current technologies.


Scientific Reports | 2017

Distribution of hybrid entanglement and hyperentanglement with time-bin for secure quantum channel under noise via weak cross-Kerr nonlinearity

Jino Heo; Min-Sung Kang; Chang Ho Hong; Hyung-Jin Yang; Seong-Gon Choi; Jong-Phil Hong

We design schemes to generate and distribute hybrid entanglement and hyperentanglement correlated with degrees of freedom (polarization and time-bin) via weak cross-Kerr nonlinearities (XKNLs) and linear optical devices (including time-bin encoders). In our scheme, the multi-photon gates (which consist of XKNLs, quantum bus [qubus] beams, and photon-number-resolving [PNR] measurement) with time-bin encoders can generate hyperentanglement or hybrid entanglement. And we can also purify the entangled state (polarization) of two photons using only linear optical devices and time-bin encoders under a noisy (bit-flip) channel. Subsequently, through local operations (using a multi-photon gate via XKNLs) and classical communications, it is possible to generate a four-qubit hybrid entangled state (polarization and time-bin). Finally, we discuss how the multi-photon gate using XKNLs, qubus beams, and PNR measurement can be reliably performed under the decoherence effect.


Quantum Information Processing | 2018

Controlled mutual quantum entity authentication with an untrusted third party

Min-Sung Kang; Jino Heo; Chang Ho Hong; Hyung Jin Yang; Sang-Wook Han; Sung Moon

Abstract We propose a quantum control entity mutual authentication protocol that can be executed in environments involving an untrusted third party. In general, the third party, referred to as Charlie, can be an entity such as a telephone company, server, financial company, or login webpage for a portal service. Most communication protocols controlled by third parties are vulnerable to internal attacks. In this study, we present two solutions that make use of an entanglement correlation checking method and random numbers against an internal attack by an untrusted third party.


Scientific Reports | 2018

Preparation of quantum information encoded on three-photon decoherence-free states via cross-Kerr nonlinearities

Jino Heo; Min-Sung Kang; Chang Ho Hong; Jong-Phil Hong; Seong-Gon Choi

We present a scheme to encode quantum information (single logical qubit information) into three-photon decoherence-free states, which can conserve quantum information from collective decoherence, via nonlinearly optical gates (using cross-Kerr nonlinearities: XKNLs) and linearly optical devices. For the preparation of the decoherence-free state, the nonlinearly optical gates (multi-photon gates) consist of weak XKNLs, quantum bus (qubus) beams, and photon-number-resolving (PNR) measurement. Then, by using a linearly optical device, quantum information can be encoded on three-photon decoherence-free state prepared. Subsequently, by our analysis, we show that the nonlinearly optical gates using XKNLs, qubus beams, and PNR measurement are robust against the decoherence effect (photon loss and dephasing) in optical fibers. Consequently, our scheme can be experimentally implemented to efficiently generate three-photon decoherence-free state encoded quantum information, in practice.


Quantum Information Processing | 2018

Universal quantum encryption for quantum signature using the swap test

Min-Sung Kang; Ho-Won Choi; Tanumoy Pramanik; Sang-Wook Han; Sung Moon

We suggest a universal quantum encryption scheme suitable for use in quantum signature. The verifier in a variety of quantum signature protocols usually checks for the falsification of the quantum signature state pair by using a swap test. However, these quantum signature protocols are not secure against existential forgery attacks; We prove that the universal quantum encryption scheme proposed in this paper is secure against this type of forgery because it uses the non-(anti)commutativity of an arbitrary unitary operator. In addition, we demonstrate its use in a quantum signature. Moreover, the optimization of this encryption in comparison with other encryption schemes is presented.


Optics Communications | 2017

Constructions of secure entanglement channels assisted by quantum dots inside single-sided optical cavities

Jino Heo; Min-Sung Kang; Chang Ho Hong; Seong-Gon Choi; Jong-Phil Hong


Physics Letters A | 2017

Scheme for secure swapping two unknown states of a photonic qubit and an electron-spin qubit using simultaneous quantum transmission and teleportation via quantum dots inside single-sided optical cavities

Jino Heo; Min-Sung Kang; Chang Ho Hong; Seong-Gon Choi; Jong-Phil Hong


Physica Scripta | 2018

Quantum message authentication scheme based on remote state preparation

Min-Sung Kang; Yeon-Ho Choi; Yong-Su Kim; Young-Wook Cho; Sang-Yun Lee; Sang-Wook Han; Sung Moon

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Jino Heo

Chungbuk National University

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Seong-Gon Choi

Chungbuk National University

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Jong-Phil Hong

Chungbuk National University

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Sang-Wook Han

Korea Institute of Science and Technology

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Sung Moon

Korea Institute of Science and Technology

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Hyeon Yang

Chungbuk National University

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Sang-Yun Lee

Korea Institute of Science and Technology

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Yong-Su Kim

Korea Institute of Science and Technology

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