Approach to coherent interference fringes in helium-surface scattering

The conventional notion of elastic, coherent atom-surface scattering originates from the scattering particles acting as a quantum-mechanical matter wave, which coherently interfere to produce distinct Bragg peaks which persist at finite temperature. If we introduce inelastic scattering to this scena...

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Main Authors: Heller, Eric J., Schram, Matthew Christopher
Other Authors: Massachusetts Institute of Technology. Department of Physics
Format: Article
Language:English
Published: American Physical Society 2018
Online Access:http://hdl.handle.net/1721.1/117758
https://orcid.org/0000-0003-1203-0621
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author Heller, Eric J.
Schram, Matthew Christopher
author2 Massachusetts Institute of Technology. Department of Physics
author_facet Massachusetts Institute of Technology. Department of Physics
Heller, Eric J.
Schram, Matthew Christopher
author_sort Heller, Eric J.
collection MIT
description The conventional notion of elastic, coherent atom-surface scattering originates from the scattering particles acting as a quantum-mechanical matter wave, which coherently interfere to produce distinct Bragg peaks which persist at finite temperature. If we introduce inelastic scattering to this scenario, the result is that the surface particles become displaced by the scattering atoms, resulting in emission or absorption of phonons that shift the final energy and momentum of the scatterer. As the lowest-lying phonons are gapless excitations, the ability to measure these phonons is very difficult and this difficulty is exacerbated by the roughly 1-eV resolution found in high-energy helium scattering experiments. Even though the surface has in effect measured the presence of the scatterer which decoheres the particle, we retain the diffraction spots which are referred to as coherent scattering. How do we reconcile these disparate viewpoints? We propose an experiment to more precisely examine the question of coherence in atom-surface scattering. We begin with an initially coherent superposition of helium particles with equal probabilities of interacting with the surface or not interacting with the surface. The beams are directed so that after the scattering event, the atoms are recombined so that we can observe the resulting interference pattern. The degree to which phonons are excited in the lattice by the scattering process dictates the fringe contrast of the interference pattern of the resulting beams. We use semiclassical techniques to simulate and test the viability of this experiment and show that for a wide range of conditions, despite the massive change in the momentum perpendicular to the surface, we can still expect to have coherent (in the superposition sense) scattering.
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spelling mit-1721.1/1177582022-10-01T00:41:36Z Approach to coherent interference fringes in helium-surface scattering Heller, Eric J. Schram, Matthew Christopher Massachusetts Institute of Technology. Department of Physics Schram, Matthew Christopher The conventional notion of elastic, coherent atom-surface scattering originates from the scattering particles acting as a quantum-mechanical matter wave, which coherently interfere to produce distinct Bragg peaks which persist at finite temperature. If we introduce inelastic scattering to this scenario, the result is that the surface particles become displaced by the scattering atoms, resulting in emission or absorption of phonons that shift the final energy and momentum of the scatterer. As the lowest-lying phonons are gapless excitations, the ability to measure these phonons is very difficult and this difficulty is exacerbated by the roughly 1-eV resolution found in high-energy helium scattering experiments. Even though the surface has in effect measured the presence of the scatterer which decoheres the particle, we retain the diffraction spots which are referred to as coherent scattering. How do we reconcile these disparate viewpoints? We propose an experiment to more precisely examine the question of coherence in atom-surface scattering. We begin with an initially coherent superposition of helium particles with equal probabilities of interacting with the surface or not interacting with the surface. The beams are directed so that after the scattering event, the atoms are recombined so that we can observe the resulting interference pattern. The degree to which phonons are excited in the lattice by the scattering process dictates the fringe contrast of the interference pattern of the resulting beams. We use semiclassical techniques to simulate and test the viability of this experiment and show that for a wide range of conditions, despite the massive change in the momentum perpendicular to the surface, we can still expect to have coherent (in the superposition sense) scattering. 2018-09-14T15:35:10Z 2018-09-14T15:35:10Z 2018-08 2018-08-28T18:00:29Z Article http://purl.org/eprint/type/JournalArticle 2469-9926 2469-9934 http://hdl.handle.net/1721.1/117758 Schram, Matthew C. and Heller, Eric J. "Approach to coherent interference fringes in helium-surface scattering." Physical Review A 98, 2 (August 2018): 022137 © 2018 American Physical Society https://orcid.org/0000-0003-1203-0621 en http://dx.doi.org/10.1103/PhysRevA.98.022137 Physical Review A Article is made available in accordance with the publisher's policy and may be subject to US copyright law. Please refer to the publisher's site for terms of use. American Physical Society application/pdf American Physical Society American Physical Society
spellingShingle Heller, Eric J.
Schram, Matthew Christopher
Approach to coherent interference fringes in helium-surface scattering
title Approach to coherent interference fringes in helium-surface scattering
title_full Approach to coherent interference fringes in helium-surface scattering
title_fullStr Approach to coherent interference fringes in helium-surface scattering
title_full_unstemmed Approach to coherent interference fringes in helium-surface scattering
title_short Approach to coherent interference fringes in helium-surface scattering
title_sort approach to coherent interference fringes in helium surface scattering
url http://hdl.handle.net/1721.1/117758
https://orcid.org/0000-0003-1203-0621
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