Holographic dynamics from multiscale entanglement renormalization ansatz

Victor Chua, Vasilios Passias, Apoorv Tiwari, and Shinsei Ryu
Phys. Rev. B 95, 195152 – Published 23 May 2017

Abstract

The multiscale entanglement renormalization ansatz (MERA) is a tensor network based variational ansatz that is capable of capturing many of the key physical properties of strongly correlated ground states such as criticality and topological order. MERA also shares many deep relationships with the AdS/CFT (gauge-gravity) correspondence by realizing a UV complete holographic duality within the tensor networks framework. Motivated by this, we have repurposed the MERA tensor network as an analysis tool to study the real-time evolution of the 1D transverse Ising model in its low-energy excited state sector. We performed this analysis by allowing the ancilla qubits of the MERA tensor network to acquire quantum fluctuations, which yields a unitary transform between the physical (boundary) and ancilla qubit (bulk) Hilbert spaces. This then defines a reversible quantum circuit, which is used as a “holographic transform” to study excited states and their real-time dynamics from the point of the bulk ancillae. In the gapped paramagnetic phase of the transverse field Ising model, we demonstrate the holographic duality between excited states induced by single spin-flips (Ising “magnons”) acting on the ground state and single ancilla qubit spin flips. The single ancillae qubit excitation is shown to be stable in the bulk under real-time evolution and hence defines a stable holographic quasiparticle, which we have named the “hologron.” Their bulk 2D Hamiltonian, energy spectrum, and dynamics within the MERA network are studied numerically. The “dictionary” between the bulk and boundary is determined and realizes many features of the holographic correspondence in a non-CFT limit of the boundary theory. As an added spin-off, this dictionary together with the extension to multihologron sectors gives us a systematic way to construct quantitatively accurate low-energy effective Hamiltonians.

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  • Received 24 February 2017

DOI:https://doi.org/10.1103/PhysRevB.95.195152

©2017 American Physical Society

Physics Subject Headings (PhySH)

Condensed Matter, Materials & Applied PhysicsParticles & Fields

Authors & Affiliations

Victor Chua, Vasilios Passias, and Apoorv Tiwari

  • Department of Physics, and Institute for Condensed Matter Theory, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801, USA

Shinsei Ryu

  • James Franck Institute and Kadanoff Center for Theoretical Physics, University of Chicago, Illinois 60637, USA

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Issue

Vol. 95, Iss. 19 — 15 May 2017

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