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Myungshik Kim

Researcher at Imperial College London

Publications -  269
Citations -  14499

Myungshik Kim is an academic researcher from Imperial College London. The author has contributed to research in topics: Quantum entanglement & Quantum. The author has an hindex of 62, co-authored 266 publications receiving 12231 citations. Previous affiliations of Myungshik Kim include Korea Institute for Advanced Study & Sogang University.

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Qubit state guidance without feedback

TL;DR: In this paper, the authors proposed a two-qubit state guidance protocol that does not rely on feedback mechanisms, and showed that entanglement can be concentrated by arranging the interactions of the qubits with a continuous variable ancilla.
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Quantum state transfer via temporal kicking of information

TL;DR: In this paper, the authors propose a strategy for perfect state transfer in spin chains based on the use of an unmodulated coupling Hamiltonian whose coefficients are explicitly time dependent, and show that if specific and non-nondemanding conditions are satisfied by the temporal behavior of the coupling strengths, their model allows perfect transfer.
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Optical squeezing for an optomechanical system without quantizing the mechanical motion

TL;DR: In this article, the need to quantize the mechanical motion of an optomechanical system based solely on homodyne measurements of the optical field was investigated, and it was shown that optical squeezing alone cannot witness the quantum nature of the mechanical oscillator.
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Hybrid cluster state proposal for a quantum game

TL;DR: In this article, an experimental implementation of a quantum game algorithm in a hybrid scheme combining the quantum circuit approach and the cluster state model is proposed to embody a quantum version of the Prisoners' Dilemma.
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Perspectives for quantum state engineering via high nonlinearity in a double-EIT regime

TL;DR: In this paper, the authors derive a quantum version of the Kerr-type nonlinearity enhanced by electromagnetically induced transparency (EIT) model with both a full Hamiltonian approach and an analysis in terms of dressed states.