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Barthel, C

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Barthel

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Barthel, C

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Now showing 1 - 3 of 3
  • Publication

    Rapid Single-Shot Measurement of a Singlet-Triplet Qubit

    (American Physical Society, 2009) Barthel, C; Reilly, David; Marcus, C; Hanson, M. P.; Gossard, Arthur

    We report repeated single-shot measurements of the two-electron spin state in a GaAs double quantum dot. The readout allows measurement with a fidelity above 90% with a ∼7  μs cycle time. Hyperfine-induced precession between singlet and triplet states of the two-electron system are directly observed, as nuclear Overhauser fields are quasistatic on the time scale of the measurement cycle. Repeated measurements on millisecond to second time scales reveal the evolution of the nuclear environment.

  • Publication

    A New Mechanism of Electric Dipole Spin Resonance: Hyperfine Coupling in Quantum Dots

    (Institute of Physics, 2009) Laird, Edward A.; Barthel, C; Rashba, Emmanuel; Marcus, C; Hanson, M. P.; Gossard, Arthur C.

    A recently discovered mechanism of electric dipole spin resonance, mediated by the hyperfine interaction, is investigated experimentally and theoretically. The effect is studied using a spin-selective transition in a GaAs double quantum dot. The resonant frequency is sensitive to the instantaneous hyperfine effective field, revealing a nuclear polarization created by driving the resonance. A device incorporating a micromagnet exhibits a magnetic field difference between dots, allowing electrons in either dot to be addressed selectively. An unexplained additional signal at half the resonant frequency is presented.

  • Publication

    Hyperfine-Mediated Gate-Driven Electron Spin Resonance

    (American Physical Society (APS), 2007) Laird, Elise; Barthel, C; Rashba, Emmanuel; Marcus, Carolyn; Hanson, Mark Jonathan; Gossard, A. C.

    An all-electrical spin resonance effect in a GaAs few-electron double quantum dot is investigated experimentally and theoretically. The magnetic field dependence and absence of associated Rabi oscillations are consistent with a novel hyperfine mechanism. The resonant frequency is sensitive to the instantaneous hyperfine effective field, and the effect can be used to detect and create sizable nuclear polarizations. A device incorporating a micromagnet exhibits a magnetic field difference between dots, allowing electrons in either dot to be addressed selectively.