Local convertibility and the quantum simulation of edge states in many-body systems
Abstract: In some many-body systems, certain ground-state entanglement (Rényi) entropies increase even as the correlation length decreases. This entanglement nonmonotonicity is a potential indicator of nonclassicality. In this work, we demonstrate that such a phenomenon, known as lack of local convertibility, is due to the edge-state (de)construction occurring in the system. To this end, we employ the example of the Ising chain, displaying an order-disorder quantum phase transition. Employing both analytical and numerical methods, we compute entanglement entropies for various system bipartitions (A|B) and consider ground states with and without Majorana edge states. We find that the thermal ground states, enjoying the Hamiltonian symmetries, show lack of local convertibility if either A or B is smaller than, or of the order of, the correlation length. In contrast, the ordered (symmetry-breaking) ground state is always locally convertible. The edge-state behavior explains all these results and could disclose a paradigm to understand local convertibility in other quantum phases of matter. The connection we establish between convertibility and nonlocal, quantum correlations provides a clear criterion of which features a universal quantum simulator should possess to outperform a classical machine
- Standort
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Deutsche Nationalbibliothek Frankfurt am Main
- Umfang
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Online-Ressource
- Sprache
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Englisch
- Anmerkungen
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Physical review X. - 4, 4 (2014) , 041028, ISSN: 2160-3308
- Ereignis
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Veröffentlichung
- (wo)
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Freiburg
- (wer)
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Universität
- (wann)
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2019
- Urheber
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Franchini, Fabio
Cui, Jian
Amico, Luigi
Fan, Heng
Gu, Mile
Korepin, Vladimir E.
Kwek, Leong Chuan
Vedral, Vlatko
- Beteiligte Personen und Organisationen
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FRIAS Natur- und Lebenswissenschaften, Medizin und Ingenieurwissenschaften
- DOI
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10.1103/physrevx.4.041028
- URN
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urn:nbn:de:bsz:25-freidok-1322421
- Rechteinformation
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Open Access; Der Zugriff auf das Objekt ist unbeschränkt möglich.
- Letzte Aktualisierung
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14.08.2025, 10:59 MESZ
Datenpartner
Deutsche Nationalbibliothek. Bei Fragen zum Objekt wenden Sie sich bitte an den Datenpartner.
Beteiligte
- Franchini, Fabio
- Cui, Jian
- Amico, Luigi
- Fan, Heng
- Gu, Mile
- Korepin, Vladimir E.
- Kwek, Leong Chuan
- Vedral, Vlatko
- FRIAS Natur- und Lebenswissenschaften, Medizin und Ingenieurwissenschaften
- Universität
Entstanden
- 2019