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  1. INTRIQ : Andréa Morello, University of New South Wales, Australie
    • 10:45
    • D1-2165
    • Title : Single-atom spin qubits in silicon

      A phosphorus donor in silicon is, almost literally, the equivalent of a hydrogen atom in vacuum. It possesses electron and nuclear spins 1/2 which act as natural qubits [1], and the host material can be isotopically purified to be almost perfectly free of other spin species, ensuring extraordinary coherence times (~180 s) [2].
      I will present the current state-of-the-art in silicon quantum information technologies, a progress that started with the single-shot readout of the spin state of an electron bound to a single P atom [3]. This method was subsequently integrated with a broadband, on-chip microwave transmission line [4] to deliver coherent electromagnetic pulses and perform arbitrary rotations of the electron spin, thereby demonstrating the first single-atom spin qubit in silicon [5].
      The 31P nuclear spin can also be read out electrically - in single-shot and with fidelity > 99.8% - from a measurement of electron spin resonance, and coherently manipulated with radiofrequency pulses [6]. This yields a nuclear spin qubit in solid state with operation and readout fidelities comparable with those of ion trap systems.
      Finally, I will discuss current efforts to couple multiple donor qubits through the exchange interaction and perform entangling quantum logic gates. The ability to control the state of the 31P nuclear spin greatly simplifies the implementation of CNOT and SWAP gates, and allows for high-fidelity two-qubit operations without the requirement of atomic-precision in the donor locations.

      [1] B. Kane, Nature 393, 133 (1998)
      [2] M. Steger et al., Science 336, 1280 (2012)
      [3] A. Morello et al., Nature 467, 687 (2010)
      [4] J. Dehollain et al., Nanotechnology 24, 015202 (2013)
      [5] J. Pla et al., Nature 489, 541 (2012)
      [6] J. Pla et al., Nature 496, 334 (2013)

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lun, 06/24/2013 - 12:30

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lun, 07/01/2013 - 12:30

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lun, 07/08/2013 - 12:30

  1. Samuel Boutin
    • 12:30
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lun, 07/15/2013 - 12:30

  1. Karl Thibault
    • 12:30
    • D3-2040
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Poirier M, Lemyre JC, Lahaie P-, Pinsard-Gaudart L, Revcolevschi A. Enhanced magnetoelastic coupling in hexagonal multiferroic HoMnO 3. Physical Review B - Condensed Matter and Materials Physics. 2011;83.
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Lemyre JC, Poirier M, Pinsard-Gaudart L, Revcolevschi A. Microwave investigation of the phase diagram of hexagonal multiferroic HoMnO3. Physical Review B. 2009;79.
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Poirier M, Laliberté F, Pinsard-Gaudart L, Revcolevschi A. Magnetoelastic coupling in hexagonal multiferroic YMn O3 using ultrasound measurements. Physical Review B. 2007;76.
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Poirier M, Castonguay M, Revcolevschi A, Dhalenne G. Ultrasonic investigation of the magnetic ordering in the quasi-one-dimensional S=1/2 antiferromagnet BaCu2Si2O7. Physical Review B. 2002;66:544021-5.
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Piskunov Y, Jérome D, Auban-Senzier P, Wzietek P, Bourbonnais C, Ammerhal U, et al. (Sr/Ca)14Cu24O41 spin ladders studied by NMR under pressure. European Physical Journal B. 2001;24:443-56.
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Poirier M, Fertey P, Jegoudez J, Revcolevschi A. Dielectric behavior and charge ordering in NaV2O5. Physical Review B. 1999;60:7341-5.
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Quirion G, Razavi FS, Dumoulin B, Poirier M, Revcolevschi A, Dhalenne G. Ultrasonic study of the spin-Peierls system CuGeO3 under pressure. Physical Review B. 1998;58:882-6.
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Mayaffre H, Auban-Senzier P, Nardone M, Jérome D, Poilblanc D, Bourbonnais C, et al. Absence of a spin gap in the superconducting ladder compound Sr2Ca12Cu24O41. Science. 1998;279:345-8.
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Fertey P, Poirier M, Castonguay M, Jegoudez J, Revcolevschi A. Ultrasonic evidence of a spin-Peierls transition in α'-NaV2O5. Physical Review B. 1998;57:13698-701.
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Fronzes P, Poirier M, Revcolevschi A, Dhalenne G. Coexistence of spin-Peierls and antiferromagnetic Néel states in doped CuGeO3: A magnetic-phase-diagram approach. Physical Review B. 1997;55:8324-9.
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