Nonlinear Spectroscopy of Controllable Many-Body Quantum Systems
arXiv:1312.3365 · doi:10.1088/1367-2630/16/9/092001
Abstract
We establish a novel approach to probing spatially resolved multi-time correlation functions of interacting many-body systems, with scalable experimental overhead. Specifically, designing nonlinear measurement protocols for multidimensional spectra in a chain of trapped ions with single-site addressability enables us, e.g., to distinguish coherent from incoherent transport processes, to quantify potential anharmonicities, and to identify decoherence-free subspaces.
12 pages, 3 figures
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Cited by in corpus (18)
- Multiqubit Spectroscopy of Gaussian Quantum Noise
- Spectroscopy of interacting quasiparticles in trapped ions
- Observation of scalable and deterministic multi-atom Dicke states in an atomic vapor
- Time evolution of correlation functions in quantum many-body systems
- Optimization of photon correlations by frequency filtering
- Local probe of single phonon dynamics in warm ion crystals
- Coherent multidimensional spectroscopy in the gas phase
- Two-dimensional spectroscopy for the study of ion Coulomb crystals
- Spin and motion dynamics with zigzag ion crystals in transverse magnetic field gradients
- Nonlinear Spectroscopy of Trapped Ions
- Direct and ultrafast probing of quantum many-body interaction and Mott-insulator transition through coherent two-dimensional spectroscopy
- Optical Two-dimensional Coherent Spectroscopy of Cold Atoms
- Noise-induced transport in the motion of trapped ions
- Topological quantum interference in a pumped Su-Schrieffer-Heeger lattice
- Probing Polariton Dynamics in Trapped Ions with Phase-Coherent Two-Dimensional Spectroscopy
- The local detection method: Dynamical detection of quantum discord with local operations
- Tensor Product Structure Geometry under Unitary Channels
- From Quantum Optics to Quantum Technologies