Certifying Ground-State Properties of Many-Body Systems

Author:

Wang Jie1ORCID,Surace Jacopo234,Frérot Irénée567ORCID,Legat Benoît8,Renou Marc-Olivier91011,Magron Victor12ORCID,Acín Antonio2313

Affiliation:

1. Academy of Mathematics and Systems Science

2. ICFO

3. The Barcelona Institute of Science and Technology

4. Perimeter Institute for Theoretical Physics

5. Univ. Grenoble Alpes

6. Institut Néel

7. Laboratoire Kastler Brossel

8. KU Leuven

9. Inria Paris-Saclay

10. CPHT

11. Institut Polytechnique de Paris

12. LAAS-CNRS and Institute of Mathematics from Toulouse

13. ICREA-Institució Catalana de Recerca i Estudis Avançats

Abstract

A ubiquitous problem in quantum physics is to understand the ground-state properties of many-body systems. Confronted with the fact that exact diagonalization quickly becomes impossible when increasing the system size, variational approaches are typically employed as a scalable alternative: Energy is minimized over a subset of all possible states and then different physical quantities are computed over the solution state. Despite remarkable success, rigorously speaking, all that variational methods offer are upper bounds on the ground-state energy. On the other hand, so-called relaxations of the ground-state problem based on semidefinite programming represent a complementary approach, providing lower bounds to the ground-state energy. However, in their current implementation, neither variational nor relaxation methods offer provable bound on other observables in the ground state beyond the energy. In this work, we show that the combination of the two classes of approaches can be used to derive certifiable bounds on the value of any observable in the ground state, such as correlation functions of arbitrary order, structure factors, or order parameters. We illustrate the power of this approach in paradigmatic examples of 1D and 2D spin-1/2 Heisenberg models. To improve the scalability of the method, we exploit the symmetries and sparsity of the considered systems to reach sizes of hundreds of particles at much higher precision than previous works. Our analysis therefore shows how to obtain certifiable bounds on many-body ground-state properties beyond energy in a scalable way. Published by the American Physical Society 2024

Funder

H2020 European Research Council

Fundación Carmen y Severo Ochoa

Fundación Cellex

FUNDACIÓ Privada MIR-PUIG

Generalitat de Catalunya

National Natural Science Foundation of China

Horizon 2020 Framework Programme

HORIZON EUROPE Marie Sklodowska-Curie Actions

National Science Foundation

Institut Périmètre de physique théorique

Government of Canada

Departament d’Innovació, Universitats i Empresa, Generalitat de Catalunya

Ontario Ministry of Research, Innovation and Science

Providence Health Care

H2020 Marie Skłodowska-Curie Actions

National Research Foundation Singapore

Hopkins Population Center, Johns Hopkins University

Agence Nationale de la Recherche

AXA Chair in Quantum Information Science

Institut Quantique Occitan

Investing for the Future PIA3

Campus for Research Excellence and Technological Enterprise

Publisher

American Physical Society (APS)

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