Cooling, Collisions and non-Sticking of Polyatomic Molecules in a Cryogenic Buffer Gas Cell
We cool and study trans-Stilbene, Nile Red and Benzonitrile in a cryogenic (7K) cell filled with low density helium buffer gas. No molecule-helium cluster formation is observed, indicating limited atom-molecule sticking in this system. We place an upper limit of 5% on the population of clustered He-...
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ndltd-harvard.edu-oai-dash.harvard.edu-1-130700522015-08-14T15:43:29ZCooling, Collisions and non-Sticking of Polyatomic Molecules in a Cryogenic Buffer Gas CellPiskorski, Julia HegePhysicsMolecular physicsLow temperature physicsBuffer gas coolingLow temperature physicsUV/Vis spectroscopyvan der Waals clustersWe cool and study trans-Stilbene, Nile Red and Benzonitrile in a cryogenic (7K) cell filled with low density helium buffer gas. No molecule-helium cluster formation is observed, indicating limited atom-molecule sticking in this system. We place an upper limit of 5% on the population of clustered He-trans-Stilbene, consistent with a measured He-molecule collisional residence time of less than \(1 \mu s\). With several low energy torsional modes, trans-Stilbene is less rigid than any molecule previously buffer gas cooled into the Kelvin regime. We report cooling and gas phase visible spectroscopy of Nile Red, a much larger molecule. Our data suggest that buffer gas cooling will be feasible for a variety of small biological molecules. The same cell is also ideal for studying collisional relaxation cross sections. Measurements of Benzonitrile vibrational state decay results in determination of the vibrational relaxation cross sections of \(\sigma_{22} = 8x10^{-15} cm^2\) and \(\sigma_{21} = 6x10^{-15} cm^2\) for the 22 (v=1) and 21 (v=1) states. For the first time, we directly observe formation of cold molecular dimers in a cryogenic buffer gas cell and determine the dimer formation cross section to be \(\sim10^{-13} cm^2\).PhysicsDoyle, John M.2014-10-21T20:00:35Z2014-10-2120142014-10-21T20:00:35ZThesis or DissertationPiskorski, Julia Hege. 2014. Cooling, Collisions and non-Sticking of Polyatomic Molecules in a Cryogenic Buffer Gas Cell. Doctoral dissertation, Harvard University.http://dissertations.umi.com/gsas.harvard.inactive:11718http://nrs.harvard.edu/urn-3:HUL.InstRepos:13070052en_USopenhttp://nrs.harvard.edu/urn-3:HUL.InstRepos:dash.current.terms-of-use#LAAHarvard University |
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Physics Molecular physics Low temperature physics Buffer gas cooling Low temperature physics UV/Vis spectroscopy van der Waals clusters |
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Physics Molecular physics Low temperature physics Buffer gas cooling Low temperature physics UV/Vis spectroscopy van der Waals clusters Piskorski, Julia Hege Cooling, Collisions and non-Sticking of Polyatomic Molecules in a Cryogenic Buffer Gas Cell |
description |
We cool and study trans-Stilbene, Nile Red and Benzonitrile in a cryogenic (7K) cell filled with low density helium buffer gas. No molecule-helium cluster formation is observed, indicating limited atom-molecule sticking in this system. We place an upper limit of 5% on the population of clustered He-trans-Stilbene, consistent with a measured He-molecule collisional residence time of less than \(1 \mu s\). With several low energy torsional modes, trans-Stilbene is less rigid than any molecule previously buffer gas cooled into the Kelvin regime. We report cooling and gas phase visible spectroscopy of Nile Red, a much larger molecule. Our data suggest that buffer gas cooling will be feasible for a variety of small biological molecules. The same cell is also ideal for studying collisional relaxation cross sections. Measurements of Benzonitrile vibrational state decay results in determination of the vibrational relaxation cross sections of \(\sigma_{22} = 8x10^{-15} cm^2\) and \(\sigma_{21} = 6x10^{-15} cm^2\) for the 22 (v=1) and 21 (v=1) states. For the first time, we directly observe formation of cold molecular dimers in a cryogenic buffer gas cell and determine the dimer formation cross section to be \(\sim10^{-13} cm^2\). === Physics |
author2 |
Doyle, John M. |
author_facet |
Doyle, John M. Piskorski, Julia Hege |
author |
Piskorski, Julia Hege |
author_sort |
Piskorski, Julia Hege |
title |
Cooling, Collisions and non-Sticking of Polyatomic Molecules in a Cryogenic Buffer Gas Cell |
title_short |
Cooling, Collisions and non-Sticking of Polyatomic Molecules in a Cryogenic Buffer Gas Cell |
title_full |
Cooling, Collisions and non-Sticking of Polyatomic Molecules in a Cryogenic Buffer Gas Cell |
title_fullStr |
Cooling, Collisions and non-Sticking of Polyatomic Molecules in a Cryogenic Buffer Gas Cell |
title_full_unstemmed |
Cooling, Collisions and non-Sticking of Polyatomic Molecules in a Cryogenic Buffer Gas Cell |
title_sort |
cooling, collisions and non-sticking of polyatomic molecules in a cryogenic buffer gas cell |
publisher |
Harvard University |
publishDate |
2014 |
url |
http://dissertations.umi.com/gsas.harvard.inactive:11718 http://nrs.harvard.edu/urn-3:HUL.InstRepos:13070052 |
work_keys_str_mv |
AT piskorskijuliahege coolingcollisionsandnonstickingofpolyatomicmoleculesinacryogenicbuffergascell |
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1716817075114082304 |