Magic dynamics in many-body localized systems
- URL: http://arxiv.org/abs/2503.07468v1
- Date: Mon, 10 Mar 2025 15:46:49 GMT
- Title: Magic dynamics in many-body localized systems
- Authors: Pedro R. Nicácio Falcão, Piotr Sierant, Jakub Zakrzewski, Emanuele Tirrito,
- Abstract summary: Nonstabilizerness, also known as quantum magic, characterizes the beyond-Clifford operations needed to prepare a quantum state.<n>This work investigates how nonstabilizerness spreads under the dynamics of disordered quantum many-body systems.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Nonstabilizerness, also known as quantum magic, characterizes the beyond-Clifford operations needed to prepare a quantum state and constitutes an essential resource, alongside entanglement, for achieving quantum advantage. This work investigates how nonstabilizerness spreads under the dynamics of disordered quantum many-body systems. Using the $\ell$-bit model, a phenomenological model of many-body localization (MBL), we present an analytical description of the nonstabilizerness growth in MBL systems. We demonstrate that our analytical formulas describe the nonstabilizerness growth in strongly disordered quantum spin chains. Our findings establish a new facet of MBL phenomenology and identify the vital role of the disorder in slowing down the growth of the complexity of quantum states, important for our understanding of quantum advantage.
Related papers
- Interplay of entanglement structures and stabilizer entropy in spin models [0.2999888908665658]
We show how entanglement structure and nonstabilizerness serve as distinctive signatures of quantum phases.
Our findings reveal entanglement spectral properties and magic-based measures serve as intertwined, robust indicators of quantum phase transitions.
arXiv Detail & Related papers (2025-03-11T17:01:00Z) - Dissipation-induced Quantum Homogenization for Temporal Information Processing [44.99833362998488]
Quantum reservoirs have great potential as they utilize the complex real-time dissipative dynamics of quantum systems for information processing and target time-series generation without precise control or fine-tuning of the Hamiltonian parameters.
We propose the disordered quantum homogenizer as an alternative platform, and prove it satisfies the necessary and sufficient conditions - stability and contractivity - of the reservoir dynamics.
The results indicate that the quantum homogenization protocol, physically implementable as either nuclear magnetic resonance ensemble or a photonic system, can potentially function as a reservoir computer.
arXiv Detail & Related papers (2024-12-13T09:05:41Z) - Amortized Stabilizer Rényi Entropy of Quantum Dynamics [7.064711321804743]
We introduce the amortized $alpha$-stabilizer R'enyi entropy, a magic monotone for unitary operations that quantifies the nonstabilizerness generation capability of quantum dynamics.
We demonstrate the versatility of the amortized $alpha$-stabilizer R'enyi entropy in investigating the nonstabilizerness resources of quantum dynamics of computational and fundamental interest.
arXiv Detail & Related papers (2024-09-10T17:23:05Z) - Mutual information fluctuations and non-stabilizerness in random circuits [0.48212500317840945]
We show a simple relationship between non-stabilizerness and information scrambling.
We explore the role of non-stabilizerness in measurement-induced entanglement phase transitions.
arXiv Detail & Related papers (2024-08-07T15:15:41Z) - Quantum coarsening and collective dynamics on a programmable quantum simulator [27.84599956781646]
We experimentally study collective dynamics across a (2+1)D Ising quantum phase transition.
By deterministically preparing and following the evolution of ordered domains, we show that the coarsening is driven by the curvature of domain boundaries.
We quantitatively explore these phenomena and further observe long-lived oscillations of the order parameter, corresponding to an amplitude (Higgs) mode.
arXiv Detail & Related papers (2024-07-03T16:29:12Z) - Computational supremacy in quantum simulation [22.596358764113624]
We show that superconducting quantum annealing processors can generate samples in close agreement with solutions of the Schr"odinger equation.
We conclude that no known approach can achieve the same accuracy as the quantum annealer within a reasonable timeframe.
arXiv Detail & Related papers (2024-03-01T19:00:04Z) - Quantifying High-Order Interdependencies in Entangled Quantum States [43.70611649100949]
We introduce the Q-information: an information-theoretic measure capable of distinguishing quantum states dominated by synergy or redundancy.
We show that quantum systems need at least four variables to exhibit high-order properties.
Overall, the Q-information sheds light on novel aspects of the internal organisation of quantum systems and their time evolution.
arXiv Detail & Related papers (2023-10-05T17:00:13Z) - Universality of critical dynamics with finite entanglement [68.8204255655161]
We study how low-energy dynamics of quantum systems near criticality are modified by finite entanglement.
Our result establishes the precise role played by entanglement in time-dependent critical phenomena.
arXiv Detail & Related papers (2023-01-23T19:23:54Z) - Directly Revealing Entanglement Dynamics through Quantum Correlation
Transfer Functions with Resultant Demonstration of the Mechanism of Many-Body
Localization [0.0]
This paper introduces the Quantum Correlation Transfer Function (QCTF) approach to entanglement dynamics in many-body quantum systems.
We show that QCTF can be fully characterized directly from the system's Hamiltonian, which circumvents the bottleneck of calculating the many-body system's time-evolution.
We also show that QCTF provides a new foundation to study the Eigenstate Thermalization Hypothesis (ETH)
arXiv Detail & Related papers (2022-01-26T22:50:04Z) - Probing many-body localization by excited-state VQE [15.708479672387796]
We propose a systematic approach to probe MBL phases via the excited-state variational quantum eigensolver (VQE)
We demonstrate convincing results of MBL on a quantum hardware, which we believe paves a promising way for future simulations of non-equilibrium systems.
arXiv Detail & Related papers (2021-11-26T19:00:18Z) - Characterizing many-body localization via exact disorder-averaged
quantum noise [0.0]
Many-body localized (MBL) phases of disordered quantum many-particle systems have a number of unique properties.
We characterize the quantum noise that a disordered spin system exerts on its parts via an influence matrix (IM)
Viewed as a wavefunction in the space of trajectories of an individual spin, the IM exhibits slow scaling of temporal entanglement in the MBL phase.
arXiv Detail & Related papers (2020-12-01T19:01:31Z) - Stark many-body localization on a superconducting quantum processor [10.67740744008533]
We build a quantum device composed of thirty-two superconducting qubits, faithfully reproducing the relaxation dynamics of a non-integrable spin model.
Our results describe the real-time evolution at sizes that surpass what is currently attainable by exact simulations in classical computers.
arXiv Detail & Related papers (2020-11-27T18:37:01Z) - Quantum Non-equilibrium Many-Body Spin-Photon Systems [91.3755431537592]
dissertation concerns the quantum dynamics of strongly-correlated quantum systems in out-of-equilibrium states.
Our main results can be summarized in three parts: Signature of Critical Dynamics, Driven Dicke Model as a Test-bed of Ultra-Strong Coupling, and Beyond the Kibble-Zurek Mechanism.
arXiv Detail & Related papers (2020-07-23T19:05:56Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.