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Updated: May 5, 2026

Construction and Characterization of External Cavity Diode Lasers for Atomic Physics
Published on: April 24, 2014
Near-infrared (769-770 nm) K atomic laser optically pumped through KXe excimer intermediate states
Abstract:
Photopumping of K/Xe vapor mixtures over a continuous spectral region >1.2 THz (>40 cm-1) in breadth yields lasing on the D1 line of atomic potassium (4p2P1/2 → 4s2S1/2) by populating the dissociative B2Σ1/2+ or weakly bound A2Π3/2 states of the KXe excimer molecule. Subsequent dissociation of the excited molecule populates the 4p2P3/2 and 4p2P1/2 levels of the K atom, the latter of which is the upper level for the 769.9 nm resonance line laser. Lasing over ∼60% of the 57.7 cm-1 gap lying between the spin-orbit split 4p2P3/2 - 4p2P1/2 states has been achieved, and single-pulse energies up to ∼35 µJ have been obtained when pumping the K/Xe mixture in the vicinity of the D2 line (766.5 nm) in a single-pass pumping configuration of the resonator. The quantum efficiency (>99%) and broad pump-acceptance bandwidth afforded by the KXe excimer lend this hybrid atomic/molecular photodissociation laser to pumping with free-running semiconductor laser arrays.

