Abstract
Intense, few-femtosecond pulse technology has enabled studies of the fastest vibrational relaxation processes. The hydrogen group vibrations can be imaged and manipulated using intense infrared pulses. Through numerical simulation, we demonstrate an example of ultrafast coherent control that could be effected with current experimental facilities, and observed using high-resolution time-of-flight spectroscopy. The proposal is a pump-probe-type technique to manipulate the D2+ ion with ultrashort pulse sequences. The simulations presented show that vibrational selection can be achieved through pulse delay. We find that the vibrational system can be purified to a two-level system thus realizing a vibrational qubit. A novel scheme for the selective transfer of population between these two levels, based on a Raman process and conditioned upon the delay time of a second control-pulse is outlined, and may enable quantum encoding with this system. © IOP Publishing Ltd and Deutsche Physikalische Gesellschaft.
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CITATION STYLE
Murphy, D. S., McKenna, J., Calvert, C. R., Williams, I. D., & McCann, J. F. (2007). Ultrafast coherent control and quantum encoding of molecular vibrations in D2+ using intense laser pulses. New Journal of Physics, 9. https://doi.org/10.1088/1367-2630/9/8/260
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