Experimental Verification of Many-Body Entanglement Using Thermodynamic Quantities

Fuente: arXiv
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Main Authors: Joshi, Jitendra, Alimuddin, Mir, Mahesh, T S, Banik, Manik
Format: Preprint
Published: 2023
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author Joshi, Jitendra
Alimuddin, Mir
Mahesh, T S
Banik, Manik
author_facet Joshi, Jitendra
Alimuddin, Mir
Mahesh, T S
Banik, Manik
contents The phenomenon of quantum entanglement underlies several important protocols that enable emerging quantum technologies. Entangled states, however, are extremely delicate and often get perturbed by tiny fluctuations in their external environment. Certification of entanglement is therefore immensely crucial for the successful implementation of protocols involving this resource. In this work, we propose a set of entanglement criteria for multi-qubit systems that can be easily verified by measuring certain thermodynamic quantities. In particular, the criteria depend on the difference in optimal global and local works extractable from an isolated quantum system under global and local interactions, respectively. As a proof of principle, we demonstrate the proposed scheme on nuclear spin registers of up to 10 qubits using the Nuclear Magnetic Resonance architecture. We prepare noisy Bell-diagonal state and noisy Greenberger-Horne-Zeilinger class of states in star-topology systems and certify their entanglement through our thermodynamic criteria. Along the same line, we also propose an entanglement certification scheme in many-body systems when only partial or even no knowledge about the state is available.
format Preprint
id arxiv_https___arxiv_org_abs_2305_15012
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Experimental Verification of Many-Body Entanglement Using Thermodynamic Quantities
Joshi, Jitendra
Alimuddin, Mir
Mahesh, T S
Banik, Manik
Quantum Physics
Other Condensed Matter
The phenomenon of quantum entanglement underlies several important protocols that enable emerging quantum technologies. Entangled states, however, are extremely delicate and often get perturbed by tiny fluctuations in their external environment. Certification of entanglement is therefore immensely crucial for the successful implementation of protocols involving this resource. In this work, we propose a set of entanglement criteria for multi-qubit systems that can be easily verified by measuring certain thermodynamic quantities. In particular, the criteria depend on the difference in optimal global and local works extractable from an isolated quantum system under global and local interactions, respectively. As a proof of principle, we demonstrate the proposed scheme on nuclear spin registers of up to 10 qubits using the Nuclear Magnetic Resonance architecture. We prepare noisy Bell-diagonal state and noisy Greenberger-Horne-Zeilinger class of states in star-topology systems and certify their entanglement through our thermodynamic criteria. Along the same line, we also propose an entanglement certification scheme in many-body systems when only partial or even no knowledge about the state is available.
title Experimental Verification of Many-Body Entanglement Using Thermodynamic Quantities
topic Quantum Physics
Other Condensed Matter
url https://arxiv.org/abs/2305.15012