Multireference Embedding and Fragmentation Methods for Classical and Quantum Computers: from Model Systems to Realistic Applications

Fuente: arXiv
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Main Authors: Verma, Shreya, Mitra, Abhishek, Wang, Qiaohong, D'Cunha, Ruhee, Jangid, Bhavnesh, Hennefarth, Matthew R., Agarawal, Valay, Otis, Leon, Haldar, Soumi, Hermes, Matthew R., Gagliardi, Laura
Format: Preprint
Published: 2025
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author Verma, Shreya
Mitra, Abhishek
Wang, Qiaohong
D'Cunha, Ruhee
Jangid, Bhavnesh
Hennefarth, Matthew R.
Agarawal, Valay
Otis, Leon
Haldar, Soumi
Hermes, Matthew R.
Gagliardi, Laura
author_facet Verma, Shreya
Mitra, Abhishek
Wang, Qiaohong
D'Cunha, Ruhee
Jangid, Bhavnesh
Hennefarth, Matthew R.
Agarawal, Valay
Otis, Leon
Haldar, Soumi
Hermes, Matthew R.
Gagliardi, Laura
contents One of the primary challenges in quantum chemistry is the accurate modeling of strong electron correlation. While multireference methods effectively capture such correlation, their steep scaling with system size prohibits their application to large molecules and extended materials. Quantum embedding offers a promising solution by partitioning complex systems into manageable subsystems. In this review, we highlight recent advances in multireference density matrix embedding and localized active space self-consistent field approaches for complex molecules and extended materials. We discuss both classical implementations and the emerging potential of these methods on quantum computers. By extending classical embedding concepts to the quantum landscape, these algorithms have the potential to expand the reach of multireference methods in quantum chemistry and materials.
format Preprint
id arxiv_https___arxiv_org_abs_2505_13394
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Multireference Embedding and Fragmentation Methods for Classical and Quantum Computers: from Model Systems to Realistic Applications
Verma, Shreya
Mitra, Abhishek
Wang, Qiaohong
D'Cunha, Ruhee
Jangid, Bhavnesh
Hennefarth, Matthew R.
Agarawal, Valay
Otis, Leon
Haldar, Soumi
Hermes, Matthew R.
Gagliardi, Laura
Chemical Physics
Quantum Physics
One of the primary challenges in quantum chemistry is the accurate modeling of strong electron correlation. While multireference methods effectively capture such correlation, their steep scaling with system size prohibits their application to large molecules and extended materials. Quantum embedding offers a promising solution by partitioning complex systems into manageable subsystems. In this review, we highlight recent advances in multireference density matrix embedding and localized active space self-consistent field approaches for complex molecules and extended materials. We discuss both classical implementations and the emerging potential of these methods on quantum computers. By extending classical embedding concepts to the quantum landscape, these algorithms have the potential to expand the reach of multireference methods in quantum chemistry and materials.
title Multireference Embedding and Fragmentation Methods for Classical and Quantum Computers: from Model Systems to Realistic Applications
topic Chemical Physics
Quantum Physics
url https://arxiv.org/abs/2505.13394