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Trapped-Ion Quantum Logic with Global Radiation Fields.
Weidt, S; Randall, J; Webster, S C; Lake, K; Webb, A E; Cohen, I; Navickas, T; Lekitsch, B; Retzker, A; Hensinger, W K.
Afiliação
  • Weidt S; Department of Physics and Astronomy, University of Sussex, Brighton BN1 9QH, United Kingdom.
  • Randall J; Department of Physics and Astronomy, University of Sussex, Brighton BN1 9QH, United Kingdom.
  • Webster SC; QOLS, Blackett Laboratory, Imperial College London, London SW7 2BW, United Kingdom.
  • Lake K; Department of Physics and Astronomy, University of Sussex, Brighton BN1 9QH, United Kingdom.
  • Webb AE; Department of Physics and Astronomy, University of Sussex, Brighton BN1 9QH, United Kingdom.
  • Cohen I; Department of Physics and Astronomy, University of Sussex, Brighton BN1 9QH, United Kingdom.
  • Navickas T; Racah Institute of Physics, The Hebrew University of Jerusalem, Jerusalem 91904, Givat Ram, Israel.
  • Lekitsch B; Department of Physics and Astronomy, University of Sussex, Brighton BN1 9QH, United Kingdom.
  • Retzker A; Department of Physics and Astronomy, University of Sussex, Brighton BN1 9QH, United Kingdom.
  • Hensinger WK; Racah Institute of Physics, The Hebrew University of Jerusalem, Jerusalem 91904, Givat Ram, Israel.
Phys Rev Lett ; 117(22): 220501, 2016 Nov 25.
Article em En | MEDLINE | ID: mdl-27925715
ABSTRACT
Trapped ions are a promising tool for building a large-scale quantum computer. However, the number of required radiation fields for the realization of quantum gates in any proposed ion-based architecture scales with the number of ions within the quantum computer, posing a major obstacle when imagining a device with millions of ions. Here, we present a fundamentally different approach for trapped-ion quantum computing where this detrimental scaling vanishes. The method is based on individually controlled voltages applied to each logic gate location to facilitate the actual gate operation analogous to a traditional transistor architecture within a classical computer processor. To demonstrate the key principle of this approach we implement a versatile quantum gate method based on long-wavelength radiation and use this method to generate a maximally entangled state of two quantum engineered clock qubits with fidelity 0.985(12). This quantum gate also constitutes a simple-to-implement tool for quantum metrology, sensing, and simulation.
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Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Phys Rev Lett Ano de publicação: 2016 Tipo de documento: Article País de afiliação: Reino Unido
Buscar no Google
Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Phys Rev Lett Ano de publicação: 2016 Tipo de documento: Article País de afiliação: Reino Unido