• Title/Summary/Keyword: 얽힘 게이트

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Quantum Entanglement Transfer in Spin-1/2 Systems (스핀계에서 양자얽힘 이동)

  • Lee, Hyuk-Jae
    • Journal of the Korean Magnetics Society
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    • v.16 no.1
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    • pp.84-87
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    • 2006
  • We suggest a procedure entangling two spin-1/2 particles at distant positions such that they cannot be directly entangled via local interaction. An already entangled pair is used to transfer the entanglement to another pair of particles by way of interaction. This scheme of nonlocal generation of entanglement can be used in the construction of a two-qubit universal gate.

Entanglement Generation by Using the Moving Spin (움직이는 스핀입자를 이용한 양자얽힘 생성 방법)

  • Lee, Hyuk-Jae
    • Journal of the Korean Magnetics Society
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    • v.17 no.1
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    • pp.6-9
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    • 2007
  • The generation of entanglement is a very important subject in the quantum computer. Here we suggest the method that generates entanglement between two spin-1/2 particles by using the third moving spin-1/2 particle. We use the $F\"{o}rster$ interaction and the exchange interaction to make the entangled state.

Research Trend for Quantum Dot Quantum Computing (양자점 큐비트 기반 양자컴퓨팅의 국외 연구 동향 분석)

  • Baek, Chungheon;Choi, Byung-Soo
    • Electronics and Telecommunications Trends
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    • v.35 no.2
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    • pp.79-88
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    • 2020
  • Quantum computing is regarded as one of the revolutionary computing technologies, and has attracted considerable attention in various fields, such as finance, chemistry, and medicine. One of the promising candidates to realize fault tolerant quantum computing is quantum dot qubits, due to their expectation of high scalability. In this study, we briefly introduce the international tendencies for quantum dot quantum computing. First, the current status of quantum dot gate operations is summarized. In most systems, over 99% of single qubit gate operation is realized, and controlled-not and controlled-phase gates as 2-qubit entangling gates are demonstrated in quantum dots. Second, several approaches to expand the number of qubits are introduced, such as 1D and 2D arrays and long-range interaction. Finally, the current quantum dot systems are evaluated for conducting quantum computing in terms of their number of qubits and gate accuracies. Quantum dot quantum computing is expected to implement scalable quantum computing. In the noisy intermediate-scale quantum era, quantum computing will expand its applications, enabling upcoming questions such as a fault-tolerant quantum computing architecture and error correction scheme to be addressed.

3D Circuit Visualization for Large-Scale Quantum Computing (대규모 양자컴퓨팅 회로 3차원 시각화 기법)

  • Kim, Juhwan;Choi, Byungsoo;Jo, Dongsik
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.25 no.8
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    • pp.1060-1066
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    • 2021
  • Recently, researches for quantum computers have been carried out in various fields. Quantum computers performs calculations by utilizing various phenomena and characteristics of quantum mechanics such as quantum entanglement and quantum superposition, thus it is a very complex calculation process compared to classical computers used in the past. In order to simulate a quantum computer, many factors and parameters of a quantum computer need to be analyzed, for example, error verification, optimization, and reliability verification. Therefore, it is necessary to visualize circuits that can intuitively simulate the configuration of the quantum computer components. In this paper, we present a novel visualization method for designing complex quantum computer system, and attempt to create a 3D visualization toolkit to deploy large circuits, provide help a new way to design large-scale quantum computing systems that can be built into future computing systems.