Evolution in time of an N-atom system. I. A physical basis set for the projection of the master equation
Abstract
We study an aggregate of N identical two-level atoms (TLA’s) coupled by the retarded interatomic interaction, using the Lehmberg-Agarwal master equation. First, we calculate the entangled eigenstates of the system; then, we use these eigenstates as a basis set for the projection of the master equation. We demonstrate that in this basis the equations of motion for the level populations, as well as the expressions for the emission and absorption spectra, assume a simple mathematical structure and allow for a transparent physical interpretation. To illustrate the use of the general theory in emission processes, we study an isosceles triangle of atoms, and present in the long wavelength limit the (cascade) emission spectrum for a hexagon of atoms fully excited at t=0. To illustrate its use for absorption processes, we tabulate (in the same limit) the biexciton absorption frequencies, linewidths, and relative intensities for polygons consisting of N=2,…,9 TLA’s.
- Publication:
-
Physical Review A
- Pub Date:
- January 2004
- DOI:
- Bibcode:
- 2004PhRvA..69a3814F
- Keywords:
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- 42.50.Fx;
- 36.40.Mr;
- 32.30.-r;
- Cooperative phenomena in quantum optical systems;
- Spectroscopy and geometrical structure of clusters;
- Atomic spectra