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Coherent singlet-triplet oscillations in a silicon-based double quantum dot

Source: Nature 481, 344 (2012); http://dx.doi.org/10.1038/nature10707

Issue Date: 6 February 2012

PUBLICATION DATA
ISSN:
1553-9644 (online)
Publisher:
AIP is a member of CrossRef NATURE
B. M. Maune
HRL Laboratories LLC, 3011 Malibu Canyon Road, Malibu, California 90265, USA

M. G. Borselli
HRL Laboratories LLC, 3011 Malibu Canyon Road, Malibu, California 90265, USA

B. Huang
HRL Laboratories LLC, 3011 Malibu Canyon Road, Malibu, California 90265, USA

T. D. Ladd
HRL Laboratories LLC, 3011 Malibu Canyon Road, Malibu, California 90265, USA

P. W. Deelman
HRL Laboratories LLC, 3011 Malibu Canyon Road, Malibu, California 90265, USA

K. S. Holabird
HRL Laboratories LLC, 3011 Malibu Canyon Road, Malibu, California 90265, USA

A. A. Kiselev
HRL Laboratories LLC, 3011 Malibu Canyon Road, Malibu, California 90265, USA

I. Alvarado-Rodriguez
HRL Laboratories LLC, 3011 Malibu Canyon Road, Malibu, California 90265, USA

R. S. Ross
HRL Laboratories LLC, 3011 Malibu Canyon Road, Malibu, California 90265, USA

A. E. Schmitz
HRL Laboratories LLC, 3011 Malibu Canyon Road, Malibu, California 90265, USA

M. Sokolich
HRL Laboratories LLC, 3011 Malibu Canyon Road, Malibu, California 90265, USA

C. A. Watson
HRL Laboratories LLC, 3011 Malibu Canyon Road, Malibu, California 90265, USA

M. F. Gyure
HRL Laboratories LLC, 3011 Malibu Canyon Road, Malibu, California 90265, USA

A. T. Hunter
HRL Laboratories LLC, 3011 Malibu Canyon Road, Malibu, California 90265, USA
Silicon is more than the dominant material in the conventional microelectronics industry: it also has potential as a host material for emerging quantum information technologies. Standard fabrication techniques already allow the isolation of single electron spins in silicon transistor-like devices. Although this is also possible in other materials, silicon-based systems have the advantage of interacting more weakly with nuclear spins. Reducing such interactions is important for the control of spin quantum bits because nuclear fluctuations limit quantum phase coherence, as seen in recent experiments in GaAs-based quantum dots. Advances in reducing nuclear decoherence effects by means of complex control still result in coherence times much shorter than those seen in experiments on large ensembles of impurity-bound electrons in bulk silicon crystals. Here we report coherent control of electron spins in two coupled quantum dots in an undoped Si/SiGe heterostructure and show that this system has a nuclei-induced dephasing time of 360 nanoseconds, which is an increase by nearly two orders of magnitude over similar measurements in GaAs-based quantum dots. The degree of phase coherence observed, combined with fast, gated electrical initialization, read-out and control, should motivate future development of silicon-based quantum information processors. ©2012

(As supplied by publisher.)

Digital Object Identifier: http://dx.doi.org/10.1038/nature10707
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