Observation of disorder-free localization and efficient disorder averaging on a quantum processor
ORAL
Abstract
One of the most challenging problems in the computational study of localization in quantum many-body systems is to capture the effects of rare events, which requires sampling over exponentially many disorder realizations. In this talk, I will present the results from our preprint arXiv:2410.06557, where we implement an efficient procedure on a quantum processor, leveraging quantum parallelism, to efficiently sample over all disorder realizations. We observe localization without disorder in quantum many-body dynamics in one and two dimensions: perturbations do not diffuse even though both the generator of dynamics and the initial states are entirely translationally invariant. The disorder strength and density can be readily tuned using the initial state. Furthermore, we demonstrate the versatility of our platform by measuring Renyi entropies. Our method could also be extended to higher moments of the physical observables and disorder learning.
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Publication: https://arxiv.org/abs/2410.06557
Presenters
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Gaurav Gyawali
Cornell University
Authors
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Gaurav Gyawali
Cornell University
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Tyler A Cochran
Princeton University
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Yuri Lensky
Google LLC
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Eliott Nathan Rosenberg
Google LLC
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Dmitry Kovrizhin
CY Cergy Paris University
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Johannes Knolle
Technical University of Munich, TU Munich
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Jad C Halimeh
INO-CNR BEC Center and Department of Physics, Uni Trento, Ludwig Maximilian University of Munich
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Igor Aleiner
Google LLC
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Roderich Moessner
Max Planck Institute for the Physics of Complex Systems, Max Planck Institute for Physics of Complex Systems
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Pedram Roushan
Google LLC