Academic literature on the topic 'Gases. Lattice dynamics. Rubidium'

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Journal articles on the topic "Gases. Lattice dynamics. Rubidium"

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Hruby, Lorenz, Nishant Dogra, Manuele Landini, Tobias Donner, and Tilman Esslinger. "Metastability and avalanche dynamics in strongly correlated gases with long-range interactions." Proceedings of the National Academy of Sciences 115, no. 13 (2018): 3279–84. http://dx.doi.org/10.1073/pnas.1720415115.

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We experimentally study the stability of a bosonic Mott insulator against the formation of a density wave induced by long-range interactions and characterize the intrinsic dynamics between these two states. The Mott insulator is created in a quantum degenerate gas of 87-Rubidium atoms, trapped in a 3D optical lattice. The gas is located inside and globally coupled to an optical cavity. This causes interactions of global range, mediated by photons dispersively scattered between a transverse lattice and the cavity. The scattering comes with an atomic density modulation, which is measured by the
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Heringa, J. R., and H. W. J. Blöte. "Cluster dynamics and universality of Ising lattice gases." Physica A: Statistical Mechanics and its Applications 251, no. 1-2 (1998): 224–34. http://dx.doi.org/10.1016/s0378-4371(97)00606-7.

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Schiffmann, Christoph, Cécile Appert-Rolland, and Ludger Santen. "Shock dynamics of two-lane driven lattice gases." Journal of Statistical Mechanics: Theory and Experiment 2010, no. 06 (2010): P06002. http://dx.doi.org/10.1088/1742-5468/2010/06/p06002.

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POMEAU, YVES. "20 YEARS OF LATTICE DYNAMICS: A PERSONAL VIEW." International Journal of Modern Physics C 18, no. 04 (2007): 437–46. http://dx.doi.org/10.1142/s0129183107010668.

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I show how the idea of lattice gases started in kinetic theory of gases, specifically as a way to study the divergences of the density expansion beyond the Boltzmann order. I end up by sketching an attempt made in informal discussions with Brosl Hasslacher to build a quantum lattice gas.
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Levin, Y., J. J. Arenzon, and M. Sellitto. "Aging dynamics and density relaxation in kinetic lattice gases under gravity." Europhysics Letters (EPL) 55, no. 6 (2001): 767–73. http://dx.doi.org/10.1209/epl/i2001-00106-9.

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BALDASSARRI, ANDREA, ANDREA PUGLISI, and UMBERTO MARINI BETTOLO MARCONI. "KINETICS MODELS OF INELASTIC GASES." Mathematical Models and Methods in Applied Sciences 12, no. 07 (2002): 965–83. http://dx.doi.org/10.1142/s0218202502001982.

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In the present paper we review some recent progresses in the study of the dynamics of cooling granular gases, obtained using idealized models to address different issues of their kinetics. The inelastic Maxwell gas is studied as an introductory mean field model that has the major advantage of being exactly resoluble in the case of scalar velocities, showing an asymptotic velocity distribution with power law tails |v|-4. More realistic models can be obtained placing the same process on a spatial lattice. Two regimes are observed: an uncorrelated transient followed by a dynamical stage character
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Gouyet, J. F. "Atomic Mobility and Spinodal-Decomposition Dynamics in Lattice Gases. Simple Discrete Models." Europhysics Letters (EPL) 21, no. 3 (1993): 335–41. http://dx.doi.org/10.1209/0295-5075/21/3/014.

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Jeffrey, Kenneth R., and Roderick E. Wasylishen. "Hydrosulfide-ion dynamics in cesium and rubidium hydrosulfide: a deuteron nuclear magnetic resonance study." Canadian Journal of Physics 64, no. 7 (1986): 833–38. http://dx.doi.org/10.1139/p86-144.

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RbSD and CsSD have a multiplicity of solid-state phase transitions involving changes in the degree of order of the SD− ion. Because the deuteron has a nuclear quadrupole moment, the observed NMR spectrum reflects any changes that take place in the deuteron-site symmetry as a result of a phase change. Furthermore, the magnitude of the observed nuclear quadrupole interaction depends on the time average of the electric-field gradient at the deuteron site; this, in general, is a function of any molecular motion in the crystal. The nuclear spin–lattice relaxation times provide information about the
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CALSAMIGLIA, J., L. HARTMANN, W. DÜR, and H. J. BRIEGEL. "ENTANGLEMENT AND DECOHERENCE IN SPIN GASES." International Journal of Quantum Information 05, no. 04 (2007): 509–23. http://dx.doi.org/10.1142/s0219749907003018.

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We study the dynamics of entanglement in spin gases. A spin gas consists of a (large) number of interacting particles whose random motion is described classically while their internal degrees of freedom are described quantum-mechanically. We determine the entanglement that occurs naturally in such systems for specific types of quantum interactions. At the same time, these systems provide microscopic models for non–Markovian decoherence: the interaction of a group of particles with other particles belonging to a background gas are treated exactly, and differences between collective and non–coll
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Zhang, M. Q., J. S. Wang, J. L. Lebowitz, and J. L. Vall�s. "Power law decay of correlations in stationary nonequilibrium lattice gases with conservative dynamics." Journal of Statistical Physics 52, no. 5-6 (1988): 1461–78. http://dx.doi.org/10.1007/bf01011660.

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Dissertations / Theses on the topic "Gases. Lattice dynamics. Rubidium"

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Parsa, Mohammad Reza. "Lattice Gases with Molecular Dynamics Collision Operator." Diss., North Dakota State University, 2018. https://hdl.handle.net/10365/28789.

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The purpose of this dissertation is to provide a direct microscopic underpinning for lattice Boltzmann (and lattice gas) methods. Lattice gases are idealized discrete models that conserve mass and momentum. These conservation laws imply, through the formalism of kinetic theory, that on a macroscopic scale these methods recover the continuity and Navier-Stokes equations. As part of the kinetic theory approach, an ensemble average of the lattice gas is taken leading to a lattice Boltzmann equation. These lattice Boltzmann equations can be implemented directly leading to the new how ubiquitous la
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Khlabystova, Milena. "Dynamical and statistical properties of Lorentz lattice gases." Diss., Georgia Institute of Technology, 2003. http://hdl.handle.net/1853/29888.

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Mukhamadiarov, Ruslan Ilyich. "Controlling non-equilibrium dynamics in lattice gas models." Diss., Virginia Tech, 2021. http://hdl.handle.net/10919/102629.

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In recent years a new interesting research avenue has emerged in non-equilibrium statistical physics, namely studies of collective responses in spatially inhomogeneous systems. Whereas substantial progress has been made in understanding the origins and the often universal nature of cooperative behavior in systems far from equilibrium, it is still unclear whether it is possible to control their global collective stochastic dynamics through local manipulations. Therefore, a comprehensive characterization of spatially inhomogeneous non-equilibrium systems is required. In the first system, we exp
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Ma, Ruichao. "Engineered potentials and dynamics of ultracold quantum gases under the microscope." Thesis, Harvard University, 2014. http://dissertations.umi.com/gsas.harvard:11368.

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In this thesis, I present experiments on making and probing strongly correlated gases of ultracold atoms in an optical lattice with engineered potentials and dynamics. The quantum gas microscope first developed in our lab enables single-site resolution imaging and manipulation of atoms in a two-dimensional lattice, offering an ideal platform for quantum simulation of condensed matter systems. Here we demonstrate our abilities to generate optical potential with high precision and high resolution, and engineer coherent dynamics using photon assisted tunneling. We also create a system of bilayer
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Daquila, George Lawrence. "Monte Carlo analysis of non-equilibrium steady states and relaxation kinetics in driven lattice gases." Diss., Virginia Tech, 2011. http://hdl.handle.net/10919/28701.

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We numerically investigate the long-time behavior of the density-density auto-correlation function in driven lattice gases, with particle exclusion and periodic boundary conditions in one, two, and three dimensions using precise Monte Carlo simulations of larger system sizes than previous studies. In the one-dimensional asymmetric exclusion process on a ring with half the lattice sites occupied, we find that correlations induce extremely slow relaxation to the asymptotic power law decay We compare the crossover functions obtained from our simulations with various analytic results in the liter
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Ono, Koki. "Two-Orbital Quantum Gases in an Optical Lattice: Interorbital Spin-Exchange Dynamics and Spin-Space Quantum Transport." Doctoral thesis, Kyoto University, 2021. http://hdl.handle.net/2433/263444.

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Yesilada, Emek. "Excitations of quantum gases in optical lattices." Thesis, 2004. http://hdl.handle.net/2152/1438.

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Yesilada, Emek Heinzen Daniel J. "Excitations of quantum gases in optical lattices." 2004. http://repositories.lib.utexas.edu/bitstream/handle/2152/1438/yesiladae47156.pdf.

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Ryu, Changhyun. "Photoassociation experiments on ultracold and quantum gases in optical lattices." Thesis, 2004. http://hdl.handle.net/2152/1254.

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Ryu, Changhyun Heinzen Daniel J. "Photoassociation experiments on ultracold and quantum gases in optical lattices." 2004. http://wwwlib.umi.com/cr/utexas/fullcit?p3143461.

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Books on the topic "Gases. Lattice dynamics. Rubidium"

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R, Monaco, and Institute for Scientific Interchange, eds. Workshop on Discrete Kinetic Theory, Lattice Gas Dynamics and Foundations of Hydrodynamics, Torino, Italy, September 20-24, 1988. Teaneck, N.J., 1989.

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The Lattice Boltzmann Equation for Fluid Dynamics and Beyond (Numerical Mathematics and Scientific Computation). Oxford University Press, USA, 2001.

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Book chapters on the topic "Gases. Lattice dynamics. Rubidium"

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Spohn, Herbert. "Nonequilibrium Dynamics for Reversible Lattice Gases." In Large Scale Dynamics of Interacting Particles. Springer Berlin Heidelberg, 1991. http://dx.doi.org/10.1007/978-3-642-84371-6_13.

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Spohn, Herbert. "Nonequilibrium Dynamics of Driven Lattice Gases." In Large Scale Dynamics of Interacting Particles. Springer Berlin Heidelberg, 1991. http://dx.doi.org/10.1007/978-3-642-84371-6_14.

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Somers, J. A., and P. C. Rem. "Flow computation with lattice gases." In Computational Fluid Dynamics for the Petrochemical Process Industry. Springer Netherlands, 1991. http://dx.doi.org/10.1007/978-94-011-3632-7_9.

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Spohn, Herbert. "Lattice Gases With Hard Core Exclusion." In Large Scale Dynamics of Interacting Particles. Springer Berlin Heidelberg, 1991. http://dx.doi.org/10.1007/978-3-642-84371-6_11.

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Spohn, Herbert. "Stochastic Models with a Single Conservation Law Other than Lattice Gases." In Large Scale Dynamics of Interacting Particles. Springer Berlin Heidelberg, 1991. http://dx.doi.org/10.1007/978-3-642-84371-6_17.

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Frank, V. L. P., H. J. Lauter, H. Godfrin, and P. Leiderer. "Lattice Dynamics of Quantum Gases Adsorbed on Graphite Investigated by Inelastic Neutron Scattering." In Excitations in Two-Dimensional and Three-Dimensional Quantum Fluids. Springer US, 1991. http://dx.doi.org/10.1007/978-1-4684-5937-1_47.

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Nilsson, Martin, and Steen Rasmussen. "Constructive Molecular Dynamics Lattice Gases: Three-Dimensional Molecular Self-Assembly." In New Constructions in Cellular Automata. Oxford University Press, 2003. http://dx.doi.org/10.1093/oso/9780195137170.003.0011.

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Realistic molecular dynamics and self-assembly is represented in a lattice simulation where water, water-hydrocarbons, and water-amphiphilic systems are investigated. The details of the phase separation dynamics and the constructive self-assembly dynamics are discussed and compared to the corresponding experimental systems. The method used to represent the different molecular types can easily be expended to include additional molecules and thus allow the assembly of more complex structures. This molecular dynamics (MD) lattice gas fills a modeling gap between traditional MD and lattice gas methods. Both molecular objects and force fields are represented by propagating information particles and all microscopic interactions are reversible. Living systems, perhaps the ultimate constructive dynamical systems, is the motivation for this work and our focus is a study of the dynamics of molecular self-assembly and self-organization. In living systems, matter is organized such that it spontaneously constructs intricate functionalities at all levels from the molecules up to the organism and beyond. At the lower levels of description, chemical reactions, molecular selfassembly and self-organization are the drivers of this complexity. We shall, in this chapter, demonstrate how molecular self-assembly and selforganization processes can be represented in formal systems. The formal systems are to be denned as a special kind of lattice gas and they are in a form where an obvious correspondence exists between the observables in the lattice gases and the experimentally observed properties in the molecular self-assembly systems. This has the clear advantage that by using these formal systems, theory, simulation, and experiment can be conducted in concert and can mutually support each other. However, a disadvantage also exists because analytical results are difficult to obtain for these formal systems due to their inherent complexity dictated by their necessary realism. The key to novelt simpler molecules (from lower levels), dynamical hierarchies are formed [2, 3]. Dynamical hierarchies are characterized by distinct observable functionalities at multiple levels of description. Since these higher-order structures are generated spontaneously due to the physico-chemical properties of their building blocks, complexity can come for free in molecular self-assembly systems. Through such processes, matter apparently can program itself into structures that constitute living systems [11, 27, 30].
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Conference papers on the topic "Gases. Lattice dynamics. Rubidium"

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Shneider, Mikhail, and Sergey Gimelshein. "Dispersion of sound induced by a non-resonant interaction of an optical lattice with collisional gases." In 28TH INTERNATIONAL SYMPOSIUM ON RAREFIED GAS DYNAMICS 2012. AIP, 2012. http://dx.doi.org/10.1063/1.4769606.

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Jasti, Venkata K., and C. Fred Higgs. "Using a Lattice-Based Cellular Automata Approach to Model the Load Carrying Capacity of Granular Flows." In ASME/STLE 2007 International Joint Tribology Conference. ASMEDC, 2007. http://dx.doi.org/10.1115/ijtc2007-44486.

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Flows of solid granular particles are proposed as an alternate lubrication mechanism to conventional liquid lubrication in sliding contacts, because of their ability to carry loads and to accommodate surface velocities. Alternate lubrication is becoming necessary in extreme temperature environments where liquid lubricants fail and in micro/nanoscale environments were they promote stiction. However understanding granular behavior has been a challenge because of their ability to behave as solids, liquids and gases with varying circumstances. Cellular automata (CA), a deterministic rule based mat
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