Modeling of a pulsed CO/N2 molecular laser system
- 1 November 1972
- journal article
- research article
- Published by AIP Publishing in Journal of Applied Physics
- Vol. 43 (11) , 4621-4631
- https://doi.org/10.1063/1.1660978
Abstract
A detailed numerical model has been developed for characterizing the important energy‐transfer processes operative in the CO/N2 dc discharge laser system. The model is based upon a rate‐equation formulation which includes 30 levels of both CO and N2 and treats multiquantum electron‐molecule excitation processes, single‐quantum vibration‐vibration exchange and vibration‐translation energy‐transfer processes, and both harmonic and overtone spontaneous emission terms. In this paper the time evolution of the CO vibrational distribution with and without N2 is calculated, and the associated small‐signal gain is predicted and compared to the measurements of Jeffers and Wiswall. Good agreement is obtained between the predicted and measured delay times to maximum gain in a pulsed CO laser system for reasonable assumptions on the important system parameters. The variation in these predicted gains and time delays is explored for various values of the electron density, the translational‐rotational temperature, and the effect of added N2 as a contribution toward improved experiment design in furthering the understanding of the phenomenology in the pulsed CO/N2 laser system.This publication has 23 references indexed in Scilit:
- Analysis of Pulsed CO LasersJournal of Applied Physics, 1971
- Population Inversion and Energy Transfer in CO LasersApplied Optics, 1971
- Quenching of Infrared Chemiluminescence 1: The Rates of De-Excitation of CO (4 ≤ v ≤ 13) by He, CO, NO, N_2, O_2, OCS, N_2O, and CO_2Applied Optics, 1971
- Excitation and relaxation in a high-pressure CO laserIEEE Journal of Quantum Electronics, 1971
- Vibrational relaxation rates for CO(ν ⩽ 13) with CO(ν = 0), OCS, O2 and HeChemical Physics Letters, 1971
- Scattering cross sections for slow electrons in polyatomic gasesJournal of Physics B: Atomic and Molecular Physics, 1970
- Relaxation by Vibration–Vibration Exchange Processes. Part I. Pure Gas CaseThe Journal of Chemical Physics, 1968
- Vibrational-Rotational Laser Action in Carbon MonoxidePhysical Review B, 1966
- Continuous-Wave Laser Action on Vibrational-Rotational Transitions of CPhysical Review B, 1964
- Vibrational Excitation of, CO, andby Electron ImpactPhysical Review B, 1964