P.M. Duarte
Rice University
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Featured researches published by P.M. Duarte.
Nature | 2015
Russell Hart; P.M. Duarte; Tsung-Lin Yang; Xinxing Liu; Thereza Paiva; Ehsan Khatami; R. T. Scalettar; Nandini Trivedi; David A. Huse; Randall G. Hulet
Ultracold atoms in optical lattices have great potential to contribute to a better understanding of some of the most important issues in many-body physics, such as high-temperature superconductivity. The Hubbard model—a simplified representation of fermions moving on a periodic lattice—is thought to describe the essential details of copper oxide superconductivity. This model describes many of the features shared by the copper oxides, including an interaction-driven Mott insulating state and an antiferromagnetic (AFM) state. Optical lattices filled with a two-spin-component Fermi gas of ultracold atoms can faithfully realize the Hubbard model with readily tunable parameters, and thus provide a platform for the systematic exploration of its phase diagram. Realization of strongly correlated phases, however, has been hindered by the need to cool the atoms to temperatures as low as the magnetic exchange energy, and also by the lack of reliable thermometry. Here we demonstrate spin-sensitive Bragg scattering of light to measure AFM spin correlations in a realization of the three-dimensional Hubbard model at temperatures down to 1.4 times that of the AFM phase transition. This temperature regime is beyond the range of validity of a simple high-temperature series expansion, which brings our experiment close to the limit of the capabilities of current numerical techniques, particularly at metallic densities. We reach these low temperatures using a compensated optical lattice technique, in which the confinement of each lattice beam is compensated by a blue-detuned laser beam. The temperature of the atoms in the lattice is deduced by comparing the light scattering to determinant quantum Monte Carlo simulations and numerical linked-cluster expansion calculations. Further refinement of the compensated lattice may produce even lower temperatures which, along with light scattering thermometry, would open avenues for producing and characterizing other novel quantum states of matter, such as the pseudogap regime and correlated metallic states of the two-dimensional Hubbard model.
Physical Review A | 2011
P.M. Duarte; Russell Hart; J. Hitchcock; Theodore A. Corcovilos; Tsung-Lin Yang; A. Reed; Randall G. Hulet
We have used the narrow 2S{sub 1/2}{yields}3P{sub 3/2} transition in the ultraviolet (uv) to laser cool and magneto-optically trap (MOT) {sup 6}Li atoms. Laser cooling of lithium is usually performed on the 2S{sub 1/2}{yields}2P{sub 3/2} (D2) transition, and temperatures of {approx}300 {mu}K are typically achieved. The linewidth of the uv transition is seven times narrower than the D2 line, resulting in lower laser cooling temperatures. We demonstrate that a MOT operating on the uv transition reaches temperatures as low as 59 {mu}K. Furthermore, we find that the light shift of the uv transition in an optical dipole trap at 1070 nm is small and blueshifted, facilitating efficient loading from the uv MOT. Evaporative cooling of a two spin-state mixture of {sup 6}Li in the optical trap produces a quantum degenerate Fermi gas with 3x10{sup 6} atoms in a total cycle time of only 11 s.
Physical Review Letters | 2015
P.M. Duarte; Russell Hart; Tsung-Lin Yang; Xinxing Liu; Thereza Paiva; Ehsan Khatami; R. T. Scalettar; Nandini Trivedi; Randall G. Hulet
We characterize the Mott insulating regime of a repulsively interacting Fermi gas of ultracold atoms in a three-dimensional optical lattice. We use in situ imaging to extract the central density of the gas and to determine its local compressibility. For intermediate to strong interactions, we observe the emergence of a plateau in the density as a function of atom number, and a reduction of the compressibility at a density of one atom per site, indicating the formation of a Mott insulator. Comparisons to state-of-the-art numerical simulations of the Hubbard model over a wide range of interactions reveal that the temperature of the gas is of the order of, or below, the tunneling energy scale. Our results hold great promise for the exploration of many-body phenomena with ultracold atoms, where the local compressibility can be a useful tool to detect signatures of different phases or phase boundaries at specific values of the filling.
arXiv: Quantum Gases | 2016
Randall G. Hulet; P.M. Duarte; Russell Hart; Tsung-Lin Yang
We use ultracold spin--1/2 atomic fermions (
Latin America Optics and Photonics Conference (2012), paper LM1B.2 | 2012
Randall G. Hulet; Russell Hart; P.M. Duarte; Tsung-Lin Yang
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Bulletin of the American Physical Society | 2015
Tsung-Lin Yang; Seth T. Coleman; P.M. Duarte; Russell Hart; Randall G. Hulet
Li) to realize the Hubbard model on a three-dimensional (3D) optical lattice. At relatively high temperatures and at densities near half-filling, we show that the gas forms a Mott insulator with unordered spins. To observe antiferromagnetic order that is predicted to occur at lower temperatures, we developed the compensated optical lattice method to evaporatively cool atoms in the lattice. This cooling has enabled the detection of short-range magnetic order by spin-sensitive Bragg scattering of light.
Archive | 2014
P.M. Duarte; Thereza Paiva; Ehsan Khatami
We cool a two spin-component gas of 6Li atoms to quantum degeneracy and confine them in optical lattices. We obtain the phase diagram for a spin-imbalanced gas in 1D and search for antiferromagnetism in 3D.
Bulletin of the American Physical Society | 2014
Russell Hart; P.M. Duarte; Tsung-Lin Yang; Xinxing Liu; Randall G. Hulet; Thereza Paiva; David A. Huse; R. T. Scalettar; Nandini Trivedi
Bulletin of the American Physical Society | 2014
Thereza Paiva; Russell Hart; P.M. Duarte; Ernie Yang; Xinxing Liu; R.G. Hulet; David A. Huse; R. T. Scalettar; Nandini Trivedi
Bulletin of the American Physical Society | 2014
P.M. Duarte; Russell Hart; Tsung-Lin Yang; Xinxing Liu; R.G. Hulet