Eisert, Jens and Eisler, Viktor and Zimborás, Zoltán (2018) Entanglement negativity bounds for fermionic Gaussian states. PHYSICAL REVIEW B CONDENSED MATTER AND MATERIALS PHYSICS, 97. p. 165123. ISSN 1098-0121
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Abstract
The entanglement negativity is a versatile measure of entanglement that has numerous applications in quantum information and in condensed matter theory. It can not only efficiently be computed in theHilbert space dimension, but for noninteracting bosonic systems, one can compute the negativity efficiently in the number of modes. However, such an efficient computation does not carry over to the fermionic realm, the ultimate reason for this being that the partial transpose of a fermionic Gaussian state is no longer Gaussian. To provide a remedy for this state of affairs, in this work, we introduce efficiently computable and rigorous upper and lower bounds to the negativity, making use of techniques of semidefinite programming, building upon the Lagrangian formulation of fermionic linear optics, and exploiting suitable products of Gaussian operators.We discuss examples in quantum many-body theory and hint at applications in the study of topological properties at finite temperature.
Item Type: | Article |
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Subjects: | Q Science / természettudomány > QC Physics / fizika |
Depositing User: | Dr Zoltán Zimborás |
Date Deposited: | 01 Oct 2018 08:30 |
Last Modified: | 05 Apr 2023 07:47 |
URI: | http://real.mtak.hu/id/eprint/86148 |
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