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Site-Resolved Imaging with the Fermi...
~
Huber, Florian Gerhard.
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Site-Resolved Imaging with the Fermi Gas Microscope.
紀錄類型:
書目-電子資源 : Monograph/item
正題名/作者:
Site-Resolved Imaging with the Fermi Gas Microscope./
作者:
Huber, Florian Gerhard.
面頁冊數:
171 p.
附註:
Source: Dissertation Abstracts International, Volume: 75-10(E), Section: B.
Contained By:
Dissertation Abstracts International75-10B(E).
標題:
Atomic physics. -
電子資源:
http://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=3626720
ISBN:
9781321017472
Site-Resolved Imaging with the Fermi Gas Microscope.
Huber, Florian Gerhard.
Site-Resolved Imaging with the Fermi Gas Microscope.
- 171 p.
Source: Dissertation Abstracts International, Volume: 75-10(E), Section: B.
Thesis (Ph.D.)--Harvard University, 2014.
This item must not be sold to any third party vendors.
The recent development of quantum gas microscopy for bosonic rubidium atoms trapped in optical lattices has made it possible to study local structure and correlations in quantum many-body systems.
ISBN: 9781321017472Subjects--Topical Terms:
3173870
Atomic physics.
Site-Resolved Imaging with the Fermi Gas Microscope.
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Source: Dissertation Abstracts International, Volume: 75-10(E), Section: B.
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Adviser: Markus Greiner.
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The recent development of quantum gas microscopy for bosonic rubidium atoms trapped in optical lattices has made it possible to study local structure and correlations in quantum many-body systems.
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Quantum gas microscopes are a perfect platform to perform quantum simulation of condensed matter systems, offering unprecedented control over both internal and external degrees of freedom at a single-site level. In this thesis, this technique is extended to fermionic particles, paving the way to fermionic quantum simulation, which emulate electrons in real solids.
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Our implementation uses lithium, the lightest atom amenable to laser cooling. The absolute timescales of dynamics in optical lattices are inversely proportional to the mass. Therefore, experiments are more than six times faster than for the only other fermionic alkali atom, potassium, and more then fourteen times faster than an equivalent rubidium experiment.
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Scattering and collecting a sufficient number of photons with our high-resolution imaging system requires continuous cooling of the atoms during the fluorescence imaging. The lack of a resolved excited hyperfine structure on the D2 line of lithium prevents efficient conventional sub-Doppler cooling. To address this challenge we have applied a Raman sideband cooling scheme and achieved the first site-resolved imaging of ultracold fermions in an optical lattice.
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