Direct observation of quantum scattering oscillations in the controlled Kr* + Rb cold collision.
basic_science · Level V
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- Record sourced from PubMed, PMID 42696599.
- Also identified by DOI 10.1126/sciadv.aeh1789.
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Abstract
Quantum interference in cold collisions has been predicted to dominate chemical dynamics at low temperatures. However, experimental observations have been largely confined to light-atom systems due to technical challenges. Here, we report direct observation of scattering oscillations in cold ionizing collisions between metastable krypton and rubidium atoms. By combining laser cooling with velocity-mapped ion imaging, we precisely controlled the collision energy from 15 millikelvin to 8 kelvin and detected the ionization products. Below 1 kelvin, pronounced quantum interference between partial waves emerges as the de Broglie wavelength approaches the interaction range. The angular oscillation period scales as [Formula: see text], consistent with a Langevin capture model for van der Waals-dominated collisions. Moreover, interference patterns in the angular distribution-collision temperature spectrum are highly sensitive to the long-range potential shape and reveal subtle shape resonances. These observations were corroborated by theoretical calculations. Our results demonstrate the quantum-classical crossover in heavy-atom systems. This study establishes a versatile platform for studying a wide range of laser-coolable species.