Measurements Conspire Nonlocally to Restructure Critical Quantum States

We study theoretically how local measurements performed on critical quantum ground states affect long-distance correlations. These states are highly entangled and feature algebraic correlations between local observables. As a consequence, local measurements can have highly nonlocal effects. Our focu...

Full description

Bibliographic Details
Main Authors: Samuel J. Garratt, Zack Weinstein, Ehud Altman
Format: Article
Language:English
Published: American Physical Society 2023-05-01
Series:Physical Review X
Online Access:http://doi.org/10.1103/PhysRevX.13.021026
_version_ 1797824071523631104
author Samuel J. Garratt
Zack Weinstein
Ehud Altman
author_facet Samuel J. Garratt
Zack Weinstein
Ehud Altman
author_sort Samuel J. Garratt
collection DOAJ
description We study theoretically how local measurements performed on critical quantum ground states affect long-distance correlations. These states are highly entangled and feature algebraic correlations between local observables. As a consequence, local measurements can have highly nonlocal effects. Our focus is on Tomonaga-Luttinger liquid ground states, a continuous family of critical states in one dimension whose structure is characterized by a Luttinger parameter K. We show that arbitrarily weak local measurements, performed over extended regions of space, can conspire to drive transitions in long-distance correlations. Conditioning first on a translation-invariant set of measurement outcomes, we show that there is a transition in the character of the postmeasurement quantum state for K<1, and highlight a formal analogy with the effect of a static defect on transport through a Tomonaga-Luttinger liquid. To investigate the full ensemble of measurement outcomes, we consider averages of physical quantities which are necessarily nonlinear in the system density matrix. We show how their behavior can be understood within a replica field theory, and for the measurements that we consider we find that the symmetry of the theory under exchange of replicas is broken for K<1/2. A well-known barrier to experimentally observing the collective effects of multiple measurements has been the need to postselect on random outcomes. Here we resolve this problem by introducing cross-correlations between experimental measurement results and classical simulations, which act as resource-efficient probes of the transition. The phenomena we discuss are, moreover, robust to local decoherence.
first_indexed 2024-03-13T10:33:32Z
format Article
id doaj.art-ec98ee635b134bd599097f6f15242923
institution Directory Open Access Journal
issn 2160-3308
language English
last_indexed 2024-03-13T10:33:32Z
publishDate 2023-05-01
publisher American Physical Society
record_format Article
series Physical Review X
spelling doaj.art-ec98ee635b134bd599097f6f152429232023-05-18T14:10:39ZengAmerican Physical SocietyPhysical Review X2160-33082023-05-0113202102610.1103/PhysRevX.13.021026Measurements Conspire Nonlocally to Restructure Critical Quantum StatesSamuel J. GarrattZack WeinsteinEhud AltmanWe study theoretically how local measurements performed on critical quantum ground states affect long-distance correlations. These states are highly entangled and feature algebraic correlations between local observables. As a consequence, local measurements can have highly nonlocal effects. Our focus is on Tomonaga-Luttinger liquid ground states, a continuous family of critical states in one dimension whose structure is characterized by a Luttinger parameter K. We show that arbitrarily weak local measurements, performed over extended regions of space, can conspire to drive transitions in long-distance correlations. Conditioning first on a translation-invariant set of measurement outcomes, we show that there is a transition in the character of the postmeasurement quantum state for K<1, and highlight a formal analogy with the effect of a static defect on transport through a Tomonaga-Luttinger liquid. To investigate the full ensemble of measurement outcomes, we consider averages of physical quantities which are necessarily nonlinear in the system density matrix. We show how their behavior can be understood within a replica field theory, and for the measurements that we consider we find that the symmetry of the theory under exchange of replicas is broken for K<1/2. A well-known barrier to experimentally observing the collective effects of multiple measurements has been the need to postselect on random outcomes. Here we resolve this problem by introducing cross-correlations between experimental measurement results and classical simulations, which act as resource-efficient probes of the transition. The phenomena we discuss are, moreover, robust to local decoherence.http://doi.org/10.1103/PhysRevX.13.021026
spellingShingle Samuel J. Garratt
Zack Weinstein
Ehud Altman
Measurements Conspire Nonlocally to Restructure Critical Quantum States
Physical Review X
title Measurements Conspire Nonlocally to Restructure Critical Quantum States
title_full Measurements Conspire Nonlocally to Restructure Critical Quantum States
title_fullStr Measurements Conspire Nonlocally to Restructure Critical Quantum States
title_full_unstemmed Measurements Conspire Nonlocally to Restructure Critical Quantum States
title_short Measurements Conspire Nonlocally to Restructure Critical Quantum States
title_sort measurements conspire nonlocally to restructure critical quantum states
url http://doi.org/10.1103/PhysRevX.13.021026
work_keys_str_mv AT samueljgarratt measurementsconspirenonlocallytorestructurecriticalquantumstates
AT zackweinstein measurementsconspirenonlocallytorestructurecriticalquantumstates
AT ehudaltman measurementsconspirenonlocallytorestructurecriticalquantumstates