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- W3105364241 endingPage "152" @default.
- W3105364241 startingPage "129" @default.
- W3105364241 abstract "The Fermi-Hubbard model is a key concept in condensed matter physics and provides crucial insights into electronic and magnetic properties of materials. Yet, the intricate nature of Fermi systems poses a barrier to answer important questions concerning d-wave superconductivity and quantum magnetism. Recently, it has become possible to experimentally realize the Fermi-Hubbard model using a fermionic quantum gas loaded into an optical lattice. In this atomic approach to the Fermi-Hubbard model the Hamiltonian is a direct result of the optical lattice potential created by interfering laser fields and short-ranged ultracold collisions. It provides a route to simulate the physics of the Hamiltonian and to address open questions and novel challenges of the underlying many-body system. This review gives an overview of the current efforts in understanding and realizing experiments with fermionic atoms in optical lattices and discusses key experiments in the metallic, band-insulating, superfluid and Mott-insulating regimes." @default.
- W3105364241 created "2020-11-23" @default.
- W3105364241 creator A5020623477 @default.
- W3105364241 date "2010-08-10" @default.
- W3105364241 modified "2023-10-14" @default.
- W3105364241 title "Fermi-Hubbard Physics with Atoms in an Optical Lattice" @default.
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