Ultracold chemistry with alkali-metal-rare-earth molecules
dc.creator | Makrides, C | |
dc.creator | Hazra, J | |
dc.creator | Pradhan, GB | |
dc.creator | Petrov, A | |
dc.creator | Kendrick, BK | |
dc.creator | González-Lezana, T | |
dc.creator | Balakrishnan, N | |
dc.creator | Kotochigova, S | |
dc.date.accessioned | 2021-02-03T18:09:44Z | |
dc.date.available | 2021-02-03T18:09:44Z | |
dc.date.issued | 2015-01-20 | |
dc.identifier.issn | 1050-2947 | |
dc.identifier.issn | 1094-1622 | |
dc.identifier.doi | http://dx.doi.org/10.34944/dspace/5805 | |
dc.identifier.other | AZ6JH (isidoc) | |
dc.identifier.uri | http://hdl.handle.net/20.500.12613/5823 | |
dc.description.abstract | © 2015 American Physical Society. A first principles study of the dynamics of Li6(2S)+Li6Yb174(2Σ+)→6Li2(1Σ+)+Yb174(1S) reaction is presented at cold and ultracold temperatures. The computations involve determination and analytic fitting of a three-dimensional potential energy surface for the Li2Yb system and quantum dynamics calculations of varying complexities, ranging from exact quantum dynamics within the close-coupling scheme, to statistical quantum treatment, and universal models. It is demonstrated that the two simplified methods yield zero-temperature limiting reaction rate coefficients in reasonable agreement with the full close-coupling calculations. The effect of the three-body term in the interaction potential is explored by comparing quantum dynamics results from a pairwise potential that neglects the three-body term to that derived from the full interaction potential. Inclusion of the three-body term in the close-coupling calculations was found to reduce the limiting rate coefficients by a factor of two. The reaction exoergicity populates vibrational levels as high as v=19 of the Li62 molecule in the limit of zero collision energy. Product vibrational distributions from the close-coupling calculations reveal sensitivity to inclusion of three-body forces in the interaction potential. Overall, the results indicate that a simplified model based on the long-range potential is able to yield reliable values of the total reaction rate coefficient in the ultracold limit but a more rigorous approach based on statistical quantum or quantum close-coupling methods is desirable when product rovibrational distribution is required. | |
dc.format.extent | 012708- | |
dc.language.iso | en | |
dc.relation.haspart | Physical Review A - Atomic, Molecular, and Optical Physics | |
dc.relation.isreferencedby | American Physical Society (APS) | |
dc.subject | physics.chem-ph | |
dc.subject | physics.chem-ph | |
dc.subject | quant-ph | |
dc.title | Ultracold chemistry with alkali-metal-rare-earth molecules | |
dc.type | Article | |
dc.type.genre | Journal Article | |
dc.relation.doi | 10.1103/PhysRevA.91.012708 | |
dc.ada.note | For Americans with Disabilities Act (ADA) accommodation, including help with reading this content, please contact scholarshare@temple.edu | |
dc.date.updated | 2021-02-03T18:09:41Z | |
refterms.dateFOA | 2021-02-03T18:09:45Z |