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Quantum Reactive Scattering of Ultracold Atoms and Molecules: Universality and Chaotic Dynamics

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arxiv 1701.09090 v2 pith:DQNF25YC submitted 2017-01-29 physics.chem-ph quant-ph

Quantum Reactive Scattering of Ultracold Atoms and Molecules: Universality and Chaotic Dynamics

classification physics.chem-ph quant-ph
keywords chaoticreactionultracoldatomscollisioncomplexdistributiondynamics
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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A fundamental question in the study of chemical reactions is how reactions proceed at a collision energy close to absolute zero. This question is no longer hypothetical: quantum degenerate gases of atoms and molecules can now be created at temperatures lower than a few tens of nanoKelvin. In this work we consider the benchmark ultracold reaction between, the most-celebrated ultracold molecule, KRb and K. For the first time we map out an accurate ab initio ground state potential energy surface of the KRbK complex in full dimensionality and report numerically exact quantum-mechanical reaction dynamics. The distribution of rotationally resolved rates is shown to be Poissonian. An analysis of the hyperspherical adiabatic potential curves explains this statistical character revealing a chaotic distribution for the short-range collision complex that plays a key role in governing the reaction outcome. We compare this with a lighter system with a smaller density of states (here the LiYbLi trimer) which displays random, and not chaotic, behavior.

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