Direct measurement of high-lying vibrational repumping transitions for molecular laser cooling
arXiv:2303.03233 · doi:10.1103/PhysRevA.107.062805
Abstract
Molecular laser cooling and trapping requires addressing all spontaneous decays to excited vibrational states that occur at the level, which is accomplished by driving repumping transitions out of these states. However, the transitions must first be identified spectroscopically at high-resolution. A typical approach is to prepare molecules in excited vibrational states via optical cycling and pumping, which requires multiple high-power lasers. Here, we demonstrate a general method to perform this spectroscopy without the need for optical cycling. We produce molecules in excited vibrational states by using optically-driven chemical reactions in a cryogenic buffer gas cell, and implement frequency-modulated absorption to perform direct, sensitive, high-resolution spectroscopy. We demonstrate this technique by measuring the spectrum of the band in YbOH. We identify the specific vibrational repump transitions needed for photon cycling, and combine our data with previous measurements of the band to determine all of the relevant spectral constants of the state. This technique achieves high signal-to-noise, can be further improved to measure increasingly high-lying vibrational states, and is applicable to other molecular species favorable for laser cooling.
14 pages, 5 figures
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