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Published April 7, 2015 | Submitted + Published
Journal Article Open

Time-evolving a matrix product state with long-ranged interactions

Abstract

We introduce a numerical algorithm to simulate the time evolution of a matrix product state under a long-ranged Hamiltonian in moderately entangled systems. In the effectively one-dimensional representation of a system by matrix product states, long-ranged interactions are necessary to simulate not just many physical interactions but also higher-dimensional problems with short-ranged interactions. Since our method overcomes the restriction to short-ranged Hamiltonians of most existing methods, it proves particularly useful for studying the dynamics of both power-law interacting, one-dimensional systems, such as Coulombic and dipolar systems, and quasi-two-dimensional systems, such as strips or cylinders. First, we benchmark the method by verifying a long-standing theoretical prediction for the dynamical correlation functions of the Haldane-Shastry model. Second, we simulate the time evolution of an expanding cloud of particles in the two-dimensional Bose-Hubbard model, a subject of several recent experiments.

Additional Information

© 2015 American Physical Society. Received 29 July 2014; revised manuscript received 17 February 2015; published 7 April 2015. We are grateful to J. H. Bardarson, E. M. Stoudenmire, and D. Varjas for helpful conversations. The authors wish to acknowledge NSF DMR-1206515 (M.Z. and J.E.M.), the Sherman Fairchild Foundation (R.M.), the Nanostructured Thermoelectrics program of DOE BES (C.K.), and the Simons Foundation (J.E.M.).

Attached Files

Published - PhysRevB.91.165112.pdf

Submitted - 1407.1832v1.pdf

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