Observation of Quantum Effects in sub Kelvin Cold Reactions
arXiv:1208.1681 · doi:10.1126/science.1229141
Abstract
There has been a long-standing quest to observe chemical reactions at low temperatures where reaction rates and pathways are governed by quantum mechanical effects. So far this field of Quantum Chemistry has been dominated by theory. The difficulty has been to realize in the laboratory low enough collisional velocities between neutral reactants, so that the quantum wave nature could be observed. We report here the first realization of merged neutral supersonic beams, and the observation of clear quantum effects in the resulting reactions. We observe orbiting resonances in the Penning ionization reaction of argon and molecular hydrogen with metastable helium leading to a sharp increase in the absolute reaction rate in the energy range corresponding to a few degrees kelvin down to 10 mK. Our method is widely applicable to many canonical chemical reactions, and will enable a breakthrough in the experimental study of Quantum Chemistry.
References in corpus (4)
- Low-energy molecular collisions in a permanent magnetic trap
- Imaging of s and d partial-wave interference in quantum scattering of identical bosonic atoms
- Large Effects of Electric Fields on Atom-Molecule Collisions at Millikelvin Temperatures
- Quantum dynamics of the O + OH -> H + O2 reaction at low temperatures