Ultracold Atoms in Optical Lattices: Simulating quantum many-body systemsOUP Oxford, 8 mar 2012 - 496 páginas Quantum computers, though not yet available on the market, will revolutionize the future of information processing. Quantum computers for special purposes like quantum simulators are already within reach. The physics of ultracold atoms, ions and molecules offer unprecedented possibilities of control of quantum many body systems and novel possibilities of applications to quantum information processing and quantum metrology. Particularly fascinating is the possibility of using ultracold atoms in lattices to simulate condensed matter or even high energy physics. This book provides a complete and comprehensive overview of ultracold lattice gases as quantum simulators. It opens up an interdisciplinary field involving atomic, molecular and optical physics, quantum optics, quantum information, condensed matter and high energy physics. The book includes some introductory chapters on basic concepts and methods, and then focuses on the physics of spinor, dipolar, disordered, and frustrated lattice gases. It reviews in detail the physics of artificial lattice gauge fields with ultracold gases. The last part of the book covers simulators of quantum computers. After a brief course in quantum information theory, the implementations of quantum computation with ultracold gases are discussed, as well as our current understanding of condensed matter from a quantum information perspective. |
Índice
| 2003 | |
basic concepts | |
Quantum simulators of condensed matter | |
methods of treatment | |
methods of treatment | |
Ultracold spinor atomic gases | |
Ultracold dipolar gases | |
Frustrated ultracold atom systems | |
Ultracold atomic gases in artificial gauge fields | |
Manybody physics from a quantum information perspective | |
Quantum information with lattice gases | |
beyond standard optical lattices | |
Bibliography | |
Otras ediciones - Ver todo
Ultracold Atoms in Optical Lattices: Simulating Quantum Many-body Systems Maciej Lewenstein,Anna Sanpera,Verònica Ahufinger Vista previa restringida - 2012 |
Ultracold Atoms in Optical Lattices: Simulating Quantum Many-Body Systems Maciej Lewenstein,Anna Sanpera,Verònica Ahufinger No hay ninguna vista previa disponible - 2017 |
Ultracold Atoms in Optical Lattices: Simulating quantum many-body systems Maciej Lewenstein,Anna Sanpera,Verònica Ahufinger No hay ninguna vista previa disponible - 2012 |
Términos y frases comunes
Abelian Anderson localization ansatz antiferromagnetic approach Bloch Bose bosons calculated chemical potential classical condensate configuration corresponding coupling critical denotes density described dimensions dipolar interactions dipole discussed disorder DMRG dynamics effective Hamiltonian eigenstates eigenvalues electrons energy entanglement entropy equation excitations experimental Fermi fermions ferromagnetic Feshbach resonances Figure finite fluctuations gauge fields ground ground-state Gutzwiller Hamiltonian Heisenberg Hilbert space Hubbard model laser Lett Lewenstein limit lobes magnetic field many-body systems matrix mean-field method molecules momentum Mott nearest-neighbor Néel non-Abelian obtained on-site operators optical lattices order parameter perturbation phase diagram Phys physics plaquette polar quantum computation quantum Monte Carlo quantum phase transition qubits random realized regime renormalization resonance rotating Section single-particle spectrum spin models spinor square lattice strongly correlated superfluid superfluid phase symmetry temperature theorem theory topological transformation trap tunneling ultracold atoms ultracold gases wave function zero
