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Science 2 May 2008:
Vol. 320. no. 5876, pp. 638 - 643
DOI: 10.1126/science.1154576

Reports

Coherent Control of Decoherence

Matthijs P. A. Branderhorst,1 Pablo Londero,1 Piotr Wasylczyk,1 Constantin Brif,2 Robert L. Kosut,3 Herschel Rabitz,2 Ian A. Walmsley1

Manipulation of quantum interference requires that the system under control remains coherent, avoiding (or at least postponing) the phase randomization that can ensue from coupling to an uncontrolled environment. We show that closed-loop coherent control can be used to mitigate the rate of quantum dephasing in a gas-phase ensemble of potassium dimers (K2), which acts as a model system for testing the general concepts of controlling decoherence. Specifically, we adaptively shaped the light pulse used to prepare a vibrational wave packet in electronically excited K2, with the amplitude of quantum beats in the fluorescence signal used as an easily measured surrogate for the purpose of optimizing coherence. The optimal pulse increased the beat amplitude from below the noise level to well above it, and thereby increased the coherence life time as compared with the beats produced by a transform-limited pulse. Closed-loop methods can thus effectively identify states that are robust against dephasing without any previous information about the system-environment interaction.

1 Clarendon Laboratory, University of Oxford, Parks Road, Oxford OX1 3PU, UK.
2 Department of Chemistry, Princeton University, Princeton, NJ 08544, USA.
3 SCSolutions, 1261 Oakmead Parkway, Sunnyvale, CA 94085, USA.

*To whom correspondence should be addressed. E-mail: walmsley{at}physics.ox.ac.uk

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Science. ISSN 0036-8075 (print), 1095-9203 (online)