English

Coherent Phase Control of Internal Conversion in Pyrazine

Atomic Physics 2015-06-22 v1

Abstract

Shaped ultrafast laser pulses were used to study and control the ionization dynamics of electronically excited pyrazine in a pump and probe experiment. For pump pulses created without feedback from the product signal, the ion growth curve (the parent ion signal as a function of pump/probe delay) was described quantitatively by the classical rate equations for internal conversion of the S2S_2 and S1S_1 states. Very different, non-classical behavior was observed when a genetic algorithm (GA) was used to minimize the ion signal at some pre-determined target time, T. Two qualitatively different control mechanisms were identified for early (T<1.5<1.5 ps) and late (T>1.5>1.5 ps) target times. In the former case, the ion signal was largely suppressed for t<Tt<T, while for tTt \gg T the ion signal produced by the GA-optimized pulse and a transform limited (TL) pulse coalesced. In contrast, for T>1.5T>1.5 ps the ion growth curve followed the classical rate equations for t<Tt<T, while for tTt \gg T the quantum yield for the GA-optimized pulse was much smaller than for a TL pulse. We interpret the first type of behavior as an indication that the wave packet produced by the pump laser is localized in a region of the S2S_2 potential energy surface where the vertical ionization energy exceeds the probe photon energy, whereas the second type of behavior may be described by a reduced absorption cross section for S0S2S_0 \rightarrow S_2 followed by incoherent decay of the excited molecules.

Keywords

Cite

@article{arxiv.1409.6360,
  title  = {Coherent Phase Control of Internal Conversion in Pyrazine},
  author = {Robert J. Gordon and Zhan Hu and Tamar Seideman and Sima Singha and Maxim Sukharev and Youbo Zhao},
  journal= {arXiv preprint arXiv:1409.6360},
  year   = {2015}
}
R2 v1 2026-06-22T06:02:55.540Z