Title :
Cu HyBrID laser kinetics: optimization of HBr partial pressure and buffer-gas flow rate
Author :
Mildren, Richard P.
Author_Institution :
Centre for Lasers & Applications, Macquarie Univ., North Ryde, NSW, Australia
fDate :
4/1/2003 12:00:00 AM
Abstract :
A detailed investigation into the dependence of the densities of the principal plasma species in the laser discharge on the buffer-gas operating parameters is reported. Simple expressions for the densities of the Cu, Br, and H species are derived by considering their major mechanisms for production and loss. These predict that the atomic Cu and Br densities are proportional to the HBr mass flow rate, whereas the density of H species (i.e., H and H2) is proportional to the added HBr partial pressure. The theory agrees well with "Hook" method measurements of Cu density in a 25-mm bore diameter device; the Cu density increases approximately in proportion to the HBr mass flow rate, whereas it depends only weakly on the HBr partial pressure. Measurements of the fraction of Cu atoms excited by the discharge pulse, the rate of regrowth of the ground-state Cu density during the inter-pulse period, and the pre-pulse plasma impedance, are also explained in accordance with the theory. The results show that the plasma conditions for maximum laser output, which are remarkably similar to those of other "halogen enhanced" Cu lasers, can be achieved more directly by adjusting the overall buffer flow rate with the partial pressure of the added HBr fixed at 1-2 mbar. The theory is also useful for predicting optimum buffer-gas conditions for a wide range of Cu HyBrID laser dimensions and operating conditions.
Keywords :
copper; gas lasers; ground states; hydrogen compounds; laser theory; plasma chemistry; plasma density; plasma kinetic theory; 1 to 2 mbar; 25 mm; Br; Br species; Cu; Cu HyBrID laser kinetics; Cu atoms; Cu species; Cu-HBr-Ne; H; H species; H2; HBr; HBr mass flow rate; HBr partial pressure; Hook method measurements; buffer-gas flow rate; buffer-gas operating parameters; densities; discharge pulse; ground-state Cu density; halogen enhanced Cu lasers; inter-pulse period; laser dimensions; laser discharge; maximum laser output; operating conditions; optimization; overall buffer flow rate; pre-pulse plasma impedance; principal plasma species; Atomic beams; Atomic measurements; Density measurement; Fluid flow measurement; Kinetic theory; Laser theory; Plasma density; Plasma measurements; Production; Pulse measurements;
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2003.809325