Using photoemission spectroscopy to probe a strongly interacting Fermi gas
arXiv:0805.0026 · doi:10.1038/nature07172
Abstract
Ultracold atom gases provide model systems in which many-body quantum physics phenomena can be studied. Recent experiments on Fermi gases have realized a phase transition to a Fermi superfluid state with strong interparticle interactions. This system is a realization of the BCS-BEC crossover connecting the physics of BCS superconductivity and that of Bose-Einstein condensation (BEC). While many aspects of this system have been investigated, it has not yet been possible to measure the single-particle excitation spectrum, which is a fundamental property directly predicted by many-body theories. Here we show that the single-particle spectral function of the strongly interacting Fermi gas at T ~ Tc is dramatically altered in a way that is consistent with a large pairing gap. We use photoemission spectroscopy to directly probe the elementary excitations and energy dispersion in the Fermi gas of atoms. In these photoemission experiments, an rf photon ejects an atom from our strongly interacting system via a spin-flip transition to a weakly interacting state. We measure the occupied single-particle density of states for an ultracold Fermi gas of 40-potassium atoms at the cusp of the BCS-BEC crossover and on the BEC side of the crossover, and compare these results to that for a nearly ideal Fermi gas. Our results probe the many-body physics in a way that could be compared to data for high-Tc superconductors. This new measurement technique for ultracold atom gases, like photoemission spectroscopy for electronic materials, directly probes low energy excitations and thus can reveal excitation gaps and/or pseudogaps. Furthermore, this technique can provide an analog to angle-resolved photoemission spectroscopy (ARPES) for probing anisotropic systems, such as atoms in optical lattice potentials.
References in corpus (18)
- Theory of ultracold Fermi gases
- Vortices and Superfluidity in a Strongly Interacting Fermi Gas
- Observation of the Pairing Gap in a Strongly Interacting Fermi Gas
- Molecular Probe of Pairing in the BEC-BCS Crossover
- p-wave Feshbach molecules
- Pairing without Superfluidity: The Ground State of an Imbalanced Fermi Mixture
- Tomographic RF Spectroscopy of a Trapped Fermi Gas at Unitarity
- The potential energy of a K Fermi gas in the BCS-BEC crossover
- Measurement of the Entropy and Critical Temperature of a Strongly Interacting Fermi Gas
- Determination of the Fermion Pair Size in a Resonantly Interacting Superfluid
- Theory of RF-spectroscopy of strongly interacting Fermions
- Measuring the one-particle excitations of ultracold fermionic atoms by stimulated Raman spectroscopy
- Radio-Frequency Transitions on Weakly-Bound Ultracold Molecules
- Competition between final-state and pairing-gap effects in the radio-frequency spectra of ultracold Fermi atoms
- Radio frequency spectroscopy of a strongly imbalanced Feshbach-resonant Fermi gas
- Bragg Spectroscopy of Cold Atomic Fermi Gases
- Final-state effects in the radio frequency spectrum of strongly interacting fermions
- Superfluid to insulator phase transition in a unitary Fermi gas
Cited by in corpus (33)
- Observation of pseudogap behavior in a strongly interacting Fermi gas
- Verification of universal relations in a strongly interacting Fermi gas
- Radiofrequency spectroscopy of a strongly interacting two-dimensional Fermi gas
- Ultra-cold Polarized Fermi Gases
- Bragg spectroscopy of a strongly interacting Fermi gas
- Detecting the Amplitude Mode of Strongly Interacting Lattice Bosons by Bragg Scattering
- Thermodynamic Measurements in a Strongly Interacting Fermi Gas
- Evolution of the Normal State of a Strongly Interacting Fermi Gas from a Pseudogap Phase to a Molecular Bose Gas
- Spectral function of spinless fermions on a one-dimensional lattice
- Phenomenology of One-Dimensional Quantum Liquids Beyond the Low-Energy Limit
- Pseudo-gap pairing in ultracold Fermi atoms
- Quantum Simulation of the Hubbard Model: The Attractive Route
- Simulating Wess-Zumino Supersymmetry Model in Optical Lattices
- Momentum Distribution and Contact of the Unitary Fermi gas
- Decoherence and Collisional Frequency Shifts of Trapped Bosons and Fermions
- Enhanced paraconductivity-like fluctuations in the radio frequency spectra of ultracold Fermi atoms
- Spin-charge separation in one-dimensional fermion systems beyond the Luttinger liquid theory
- Spectral signatures of the Fulde-Ferrell-Larkin-Ovchinnikov order parameter in one-dimensional optical lattices
- Interacting Hofstadter spectrum of atoms in an artificial gauge field
- Microscopic Approach to Shear Viscosities in Superfluid Gases: From BCS to BEC
- Bogoliubov theory of interacting bosons on a lattice in a synthetic magnetic field
- Bound states of a localized magnetic impurity in a superfluid of paired ultracold fermions
- Probing quasi-particle states in strongly interacting atomic gases by momentum-resolved Raman photoemission spectroscopy
- Virial expansion for a strongly correlated Fermi gas with imbalanced spin populations
- Magnetic phases and transitions of the two-species Bose-Hubbard model
- Low-temperature thermodynamics of the unitary Fermi gas: superfluid fraction, first sound and second sound
- Probing ultra-cold Fermi atoms with a single ion
- Dynamic response of strongly correlated Fermi gases in the quantum virial expansion
- Pairing-gap, pseudo-gap, and no-gap phases in the radio-frequency spectra of a trapped unitary 6Li gas
- Magnetism and quantum phase transitions in spin-1/2 attractive fermions with polarization
- Superfluidity in atomic Fermi gases
- A Composite Fermion Approach to the Ultracold Dilute Fermi Gas
- Thermodynamic properties of two-component fermionic atoms trapped in a two-dimensional optical lattice