04.25.+l Entanglement in solid state systems, Luttinger liquids, etc.

Topological phases of lattice bosons with a dynamical gauge field

Date: 
2015-12-14 - 2016-03-02
Author(s): 

David Raventós, Tobias Graß, Bruno Juliá-Díaz, Luis Santos, Maciej Lewenstein

Reference: 

Phys. Rev. A 93, 033605

Optical lattices with a complex-valued tunneling term have become a standard way of studying gauge-field physics with cold atoms. If the complex phase of the tunneling is made density dependent, such a system features even a self-interacting or dynamical magnetic field. In this paper we study the scenario of a few bosons in either a static or a dynamical gauge field by means of exact diagonalization.

Synthetic helical liquids with ultracold atoms in optical lattices

Date: 
2015-09-02
Author(s): 

J. C. Budich, C. Laflamme, F. Tschirsich, S. Montangero, P. Zoller

Reference: 

Phys. Rev. B 92, 245121 (2015)
http://dx.doi.org/10.1103/PhysRevB.92.245121

We discuss a platform for the synthetic realization of key physical properties of helical Tomonaga Luttinger liquids (HTLLs) with ultracold fermionic atoms in one-dimensional optical lattices. The HTLL is a strongly correlated metallic state where spin polarization and propagation direction of the itinerant particles are locked to each other.

Quantum Gross-Pitaevskii Equation

Date: 
2015-05-26
Author(s): 

J. Haegeman, D. Draxler, V. Stojevic, J. I. Cirac, T. J. Osborne, F. Verstraete

Reference: 

arXiv:1501.06575

We introduce a non-commutative generalization of the Gross-Pitaevskii equation for one-dimensional quantum field theories. This generalization is obtained by applying the Dirac-Frenkel time-dependent variational principle to the variational manifold of continuous matrix product states.

Chiral topological spin liquids with projected entangled pair states

Date: 
2015-05-26
Author(s): 

D. Poilblanc, J.I. Cirac, N. Schuch

Reference: 

arXiv:1504.05236

Topological chiral phases are ubiquitous in the physics of the Fractional Quantum Hall Effect. Non-chiral topological spin liquids are also well known. Here, using the framework of projected entangled pair states (PEPS), we construct a family of chiral spin liquids on the square lattice which are generalized spin-1/2 Resonating Valence Bond (RVB) states obtained from deformed local tensors with d+id symmetry.

Infinite Matrix Product States for Open Spin Chains

Date: 
2015-05-26
Author(s): 

Hong-Hao Tu and Germán Sierra

Reference: 

arXiv:1504.07224

We propose infinite Matrix Product States (MPS) constructed from conformal field theories for describing 1D critical systems with open boundaries. To illustrate this, we consider a simple infinite MPS for a spin-1/2 chain and derive an inhomogeneous open Haldane-Shastry model. For the spin-1/2 open Haldane-Shastry model, we derive an exact expression for the two-point spin correlation function.

Emergent Fermi Sea in a System of Interacting Bosons

Date: 
2014-11-01
Author(s): 

Ying-Hai Wu and Jainendra K. Jain

Reference: 

arxiv:1411.6918

An understanding of the possible ways in which interactions can produce fundamentally new emergent many-body states is a central problem of condensed matter physics. We ask if a Fermi sea can arise in a system of bosons subject to contact interaction.

Hexagon-singlet solid ansatz for the spin-1 kagome antiferromagnet

Date: 
2014-12-22
Author(s): 

Wei Li, Andreas Weichselbaum, Jan von Delft, and Hong-Hao Tu

Reference: 

arXiv:1412.7123

We perform a systematic investigation on the hexagon-singlet solid (HSS) states, which are a class of spin liquid candidates for the spin-1 kagome antiferromagnet. With the Schwinger boson representation, we show that all HSS states have exponentially decaying correlations and can be interpreted as a (special) subset of the resonating Affleck-Kennedy-Lieb-Tasaki (AKLT) loop states.

Resonating valence-bond superconductors with fermionic projected entangled pair states

Date: 
2014-06-27
Author(s): 

Didier Poilblanc, Philippe Corboz, Norbert Schuch, J. Ignacio Cirac

Reference: 

Phys. Rev. B 89, 241106 (2014)

We construct a family of simple fermionic projected entangled pair states (fPEPS) on the square lattice with bond dimension D=3 which are exactly hole-doped resonating valence bond (RVB) wavefunctions with short-range singlet bonds. Under doping the insulating RVB spin liquid evolves immediately into a superconductor with mixed d+is pairing symmetry whose pair amplitude grows as the square-root of the doping.

Strongly correlated states of trapped ultracold fermions in deformed Landau levels

Date: 
2015-03-09
Author(s): 

M. Burrello, M. Rizzi, M. Roncaglia and A. Trombettoni

Reference: 

Phys. Rev. B 91, 115117

We analyze the strongly correlated regime of a two-component trapped ultracold fermionic gas in a synthetic non-Abelian U(2) gauge potential, that consists of both a magnetic field and a homogeneous spin-orbit coupling. This gauge potential deforms the Landau levels (LLs) with respect to the Abelian case and exchanges their ordering as a function of the spin-orbit coupling.

Commensurate and Incommensurate States of Topological Quantum Matter

Date: 
2014-11-03
Author(s): 

Ashley Milsted, Emilio Cobanera, Michele Burrello, Gerardo Ortiz

Reference: 

Phys. Rev. B 90, 195101 (2014)

We prove numerically and by dualities the existence of modulated, commensurate and incommensurate states of topological quantum matter in simple systems of parafermions, motivated by recent proposals for the realization of such systems in mesoscopic arrays. In two space dimensions, we obtain the simplest representative of a topological universality class that we call Lifshitz.

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