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Optoelectrical cooling of polar molecules to sub-millikelvin temperatures

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arxiv 1511.09427 v2 pith:25STMBOG submitted 2015-11-30 physics.atom-ph physics.chem-phquant-ph

classification physics.atom-phphysics.chem-phquant-ph
keywords coolingmoleculesoptoelectricaltemperatureapplicableapproachcdot10demonstrate
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abstract

We demonstrate direct cooling of gaseous formaldehyde (H2CO) to the microkelvin regime. Our approach, optoelectrical Sisyphus cooling, provides a simple dissipative cooling method applicable to electrically trapped dipolar molecules. By reducing the temperature by three orders of magnitude and increasing the phase-space density by a factor of ~$10^4$ we generate an ensemble of $3\cdot10^5$ molecules with a temperature of about 420\mu K, populating a single rotational state with more than 80% purity.

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  1. Controlling rovibrational state populations of polar molecules in inhomogeneous electric fields of the Stark deceleration: molecular dynamics and quantum chemistry simulations

    physics.atom-ph 2025-06 conditional novelty 6.0 of 10

    A modified SCRAP technique using the decelerator's time-varying dc electric field as the chirp can achieve >99.5% population inversion between weak-field- and strong-field-seeking states of ammonia, improving Stark de...

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