Title :
Superlinear Enhancement of Discharge Driven Electric Oxygen-Iodine Laser by Increasing
Author :
Benavides, Gabriel F. ; Woodard, Brian S. ; Zimmerman, Joseph W. ; Palla, Andrew D. ; Day, Michael T. ; King, Darren M. ; Carroll, David L. ; Verdeyen, Joseph T. ; Solomon, Wayne C.
Author_Institution :
CU Aerosp., Champaign, IL, USA
fDate :
6/1/2012 12:00:00 AM
Abstract :
Continuing experiments with electric oxygen-iodine laser (ElectricOIL) technology have significantly increased laser power output by increasing the product of gain and gain-length, g0L. The authors report on progress with recent ElectricOIL devices utilizing a new concentric discharge geometry with improved O2(a1Δ) production at higher discharge operating pressure at higher system flow rates. O2(a1Δ) produced in flowing radio-frequency discharge in O2-He-NO gas mixture is used to pump I(2P1/2) by near-resonant energy transfer, and laser power is extracted on the I(2P1/2)→ I(2P3/2) transition at 1315 nm. Advancements in heat exchanger design reduce O2(a1Δ) wall loss without sacrificing significant cooling efficiency improving best gain performance from 0.26 to 0.30% cm-1. Modeling of recent data is presented. By increasing the gain length (system size) by a factor of 3, a 5-fold increase in laser output on the 1315-nm transition of atomic iodine was achieved. Flow conditions with g0L = 0.042 were used to extract a continuous wave average total laser power of 481 W. A low frequency ±11.9% oscillation in the total power was observed giving a peak outcoupled power of 538 W.
Keywords :
gas lasers; gas mixtures; heat exchangers; high-frequency discharges; iodine; laser beams; laser cooling; optical design techniques; optical losses; optical pumping; oxygen; ElectricOIL technology; O2-I; atomic iodine; concentric discharge geometry; continuous wave average total laser power; cooling efficiency; discharge driven electric oxygen-iodine laser; discharge operating pressure; gain performance; gain-length; gas mixture; heat exchanger design; high system flow rates; low frequency oscillation; near-resonant energy transfer; outcoupled power; power 481 W; power 538 W; radiofrequency discharge; superlinear enhancement; system size; wall loss; wavelength 1315 nm; Discharges (electric); Electrodes; Electron tubes; Optical resonators; Power lasers; Power measurement; Temperature measurement; ${rm O}_{2}(a)$ ; all-gas laser; discharge oxygen iodine laser (DOIL); electric oxygen-iodine laser (EOIL); oxygen-helium discharge; singlet delta oxygen;
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2011.2177246