University of Oulu

Brzezicki, W., Silveri, M., Płodzień, M., Massel, F., & Hyart, T. (2023). Non-Hermitian topological quantum states in a reservoir-engineered transmon chain. Physical Review B, 107(11), 115146. https://doi.org/10.1103/PhysRevB.107.115146

Non-Hermitian topological quantum states in a reservoir-engineered transmon chain

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Author: Brzezicki, Wojciech1,2; Silveri, Matti3; Płodzién, Marcin4,5;
Organizations: 11Institute of Theoretical Physics, Jagiellonian University, ulica S. Łojasiewicza 11, PL-30348 Kraków, Poland
2International Research Centre MagTop, Institute of Physics, Polish Academy of Sciences, Aleja Lotników 32/46, PL-02668 Warsaw, Poland
3Nano and Molecular Systems Research Unit, University of Oulu, FI-90014 Oulu, Finland
4ICFO - Institut de Ciencies Fotoniques, The Barcelona Institute of Science and Technology, 08860 Castelldefels, Barcelona, Spain
5International Research Centre MagTop, Institute of Physics, Polish Academy of Sciences, Aleja Lotników 32/46, PL-02668 Warsaw, Polan
6Department of Science and Industry Systems, University of South-Eastern Norway, P.O. Box 235, Kongsberg, Norway
7Computational Physics Laboratory, Physics Unit, Faculty of Engineering and Natural Sciences, Tampere University, FI-33014 Tampere, Finland
8Department of Applied Physics, Aalto University, 00076 Aalto, Espoo, Finland
Format: article
Version: published version
Access: open
Online Access: PDF Full Text (PDF, 1.1 MB)
Persistent link: http://urn.fi/urn:nbn:fi-fe2023042138140
Language: English
Published: American Physical Society, 2023
Publish Date: 2023-04-21
Description:

Abstract

Dissipation in open systems enriches the possible symmetries of the Hamiltonians beyond the Hermitian framework, allowing the possibility of novel non-Hermitian topological phases which exhibit long-living end states that are protected against disorder. So far, non-Hermitian topology has been explored in settings where probing genuine quantum effects has been challenging. We theoretically show that a non-Hermitian topological quantum phase can be realized in a reservoir-engineered transmon chain. The spatial modulation of dissipation is obtained by coupling each transmon to a quantum circuit refrigerator, allowing in situ tuning of dissipation strength in a wide range. By solving the many-body Lindblad master equation using a combination of the density matrix renormalization group and Prosen-Seligman third quantization approaches, we show that the topological end modes and the associated phase transition are visible in simple reflection measurements with experimentally realistic parameters. Finally, we demonstrate that genuine quantum effects are observable in this system via robust and slowly decaying long-range quantum entanglement of the topological end modes, which can be generated passively starting from a locally excited transmon.

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Series: Physical review. B
ISSN: 2469-9950
ISSN-E: 2469-9969
ISSN-L: 2469-9950
Volume: 107
Issue: 11
Article number: 115146
DOI: 10.1103/PhysRevB.107.115146
OADOI: https://oadoi.org/10.1103/PhysRevB.107.115146
Type of Publication: A1 Journal article – refereed
Field of Science: 114 Physical sciences
Subjects:
Copyright information: ©2023 American Physical Society.