Projekte pro Jahr
Abstract
Quantum tensor network states and more particularly projected entangled-pair states provide a natural framework for representing ground states of gapped, topologically ordered systems. The defining feature of these representations is that topological order is a consequence of the symmetry of the underlying tensors in terms of matrix product operators. In this paper, we present a systematic study of those matrix product operators, and show how this relates entanglement properties of projected entangled-pair states to the formalism of fusion tensor categories. From the matrix product operators we construct a C ∗-algebra and find that topological sectors can be identified with the central idempotents of this algebra. This allows us to construct projected entangled-pair states containing an arbitrary number of anyons. Properties such as topological spin, the S matrix, fusion and braiding relations can readily be extracted from the idempotents. As the matrix product operator symmetries are acting purely on the virtual level of the tensor network, the ensuing Wilson loops are not fattened when perturbing the system, and this opens up the possibility of simulating topological theories away from renormalization group fixed points. We illustrate the general formalism for the special cases of discrete gauge theories and string-net models.
Originalsprache | Englisch |
---|---|
Seiten (von - bis) | 183-233 |
Seitenumfang | 51 |
Fachzeitschrift | Annals of Physics |
Jahrgang | 378 |
DOIs | |
Publikationsstatus | Veröffentlicht - März 2017 |
ÖFOS 2012
- 103024 Quantenfeldtheorie
Fingerprint
Untersuchen Sie die Forschungsthemen von „Anyons and matrix product operator algebras“. Zusammen bilden sie einen einzigartigen Fingerprint.Projekte
- 3 Abgeschlossen
-
SIQS: Simulators and Interfaces with Quantum Systems
Aspelmeyer, M. & Paulovics, V.
1/05/13 → 30/04/16
Projekt: Forschungsförderung
-
QUERG: Quantum entanglement and the renormalization group
Verstraete, F.
1/11/09 → 31/10/14
Projekt: Forschungsförderung
-
FoQuS III - P14: Simulation of strongly correlated quantum systems
Verstraete, F., Walther, P. & Paulovics, V.
1/01/09 → 31/12/18
Projekt: Forschungsförderung