Abstract
We theoretically and experimentally demonstrate the control of the intermediate state absorption in an (n + m) resonance-mediated multi-photon absorption process by the polarization-modulated femtosecond laser pulse. An analytical solution of the intermediate state absorption in a resonance-mediated multi-photon absorption process is obtained based on the time-dependent perturbation theory. Our theoretical results show that the control efficiency of the intermediate state absorption by the polarization modulation is independent of the laser intensity when the transition from the intermediate state to the final state is coupled by the single-photon absorption, but will be affected by the laser intensity when this transition is coupled by the non-resonant multi-photon absorption. These theoretical results are experimentally confirmed via a two-photon fluorescence control in (2 + 1) resonance-mediated three-photon absorption of Coumarin 480 dye and a single-photon fluorescence control in (1 + 2) resonance-mediated three-photon absorption of IR 125 dye.
| Original language | English |
|---|---|
| Article number | 135402 |
| Journal | Journal of Physics B: Atomic, Molecular and Optical Physics |
| Volume | 48 |
| Issue number | 13 |
| DOIs | |
| State | Published - 14 Jul 2015 |
Keywords
- control efficiency
- intermediate state absorption
- laser intensity
- polarization modulation