Projects per year
Abstract
Dynamical phase transitions extend the notion of criticality to nonstationary settings and are characterized by sudden changes in the macroscopic properties of time-evolving quantum systems. Investigations of dynamical phase transitions combine aspects of symmetry, topology, and nonequilibrium physics; however, progress has been hindered by the notorious difficulties of predicting the time evolution of large, interacting quantum systems. Here, we tackle this outstanding problem by determining the critical times of interacting many-body systems after a quench using Loschmidt cumulants. Specifically, we investigate dynamical topological phase transitions in the interacting Kitaev chain and in the spin-1 Heisenberg chain. To this end, we map out the thermodynamic lines of complex times, where the Loschmidt amplitude vanishes, and identify the intersections with the imaginary axis, which yield the real critical times after a quench. For the Kitaev chain, we can accurately predict how the critical behavior is affected by strong interactions, which gradually shift the time at which a dynamical phase transition occurs. We also discuss the experimental perspectives of predicting the first critical time of a quantum many-body system by measuring the energy fluctuations in the initial state, and we describe the prospects of implementing our method on a near-term quantum computer with a limited number of qubits. Our work demonstrates that Loschmidt cumulants are a powerful tool to unravel the far-from-equilibrium dynamics of strongly correlated many-body systems, and our approach can immediately be applied in higher dimensions.
Original language | English |
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Article number | 041018 |
Number of pages | 15 |
Journal | Physical Review X |
Volume | 11 |
Issue number | 4 |
DOIs | |
Publication status | Published - 26 Oct 2021 |
MoE publication type | A1 Journal article-refereed |
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Flat bands and disorder: Flat bands and disorder
Peotta, S. (Principal investigator)
01/09/2020 → 31/08/2025
Project: Academy of Finland: Other research funding
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AoF_post doc _Brange: Lee-Yang theory of phase transitions in interacting quantum many-body systems
Norrman Brange, F. (Principal investigator)
01/09/2020 → 31/08/2023
Project: Academy of Finland: Other research funding
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QuLeeYang: Lee-Yang theory of phase transitions in interacting quantum many-body systems
Raitio, R. (Principal investigator)
31/08/2020 → 31/07/2022
Project: EU: MC
Press/Media
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Physicists find a new powerful method to explore phase transitions in strongly correlated quantum systems
17/11/2021
1 Media contribution
Press/Media: Media appearance
Activities
- 1 Organization of a workshop, panel, session, tutorial or event
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Bose-Einstein Condensation Conference
Peotta, S. (Member)
11 Sept 2021 → 17 Sept 2021Activity: Participating in or organising an event types › Organization of a workshop, panel, session, tutorial or event