Localized sample-based quantum diagonalization for strongly correlated chemistry

Q Qiaohong Wang (Pritzker School of Molecular Engineering, University of Chicago) K Kevin J. Sung (International Business Machines Corporation Quantum, International Business Machines Corporation T. J. Watson Research Center) R Ruhee D’Cunha (Department of Chemistry, University of Chicago) M Matthew R. Hermes (Department of Chemistry) T Tanvi Gujarati Y Yukio Kawashima (International Business Machines Corporation Quantum, International Business Machines Corporation Research-Tokyo) Y Yu-ya Ohnishi (Materials Informatics Initiative, RD Technology and Digital Transformation Center, Electronic Materials Division, JSR Corporation) G Gavin O. Jones M Mario Motta (International Business Machines Corporation Quantum, International Business Machines Corporation T. J. Watson Research Center) L Laura Gagliardi

Abstract

We develop a hybrid quantum-classical workflow combining sample-based quantum diagonalization (SQD) and the localized active space self-consistent field method (LASSCF) to solve for the ground states of transition-metal complexes, a longstanding challenge for both classical and quantum algorithms. The resulting approach, named LASSQD, integrates quantum sampling with fragment-based multireference theory to reduce the computational cost of solving strongly correlated active spaces. We test LASSQD on multiple iron-based complexes and demonstrate that it agrees with LASSCF within 1 kcal/mol, albeit at a much reduced computational cost. The cost reduction originates from the use of a sparse approximation of the exact and combinatorially large ground-state wavefunction, which also enables LASSQD to treat fragment sizes that are computationally inaccessible to LASSCF, as demonstrated by our computation of the spin gap of iron-porphyrin. These results establish that LASSQD is a scalable strategy for generating reliable multireference wave functions, providing a robust starting point for post-SCF correlation methods that recover dynamic correlation beyond the active space, and a promising pathway toward quantum-enhanced electronic structure calculations.

Article Details

Volume / Issue Vol. 123, Issue 28
Published July 14, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (10)

Q

Qiaohong Wang

Pritzker School of Molecular Engineering, University of Chicago

K

Kevin J. Sung

International Business Machines Corporation Quantum, International Business Machines Corporation T. J. Watson Research Center

R

Ruhee D’Cunha

Department of Chemistry, University of Chicago

M

Matthew R. Hermes

Department of Chemistry

T

Tanvi Gujarati

Y

Yukio Kawashima

International Business Machines Corporation Quantum, International Business Machines Corporation Research-Tokyo

Y

Yu-ya Ohnishi

Materials Informatics Initiative, RD Technology and Digital Transformation Center, Electronic Materials Division, JSR Corporation

G

Gavin O. Jones

M

Mario Motta

International Business Machines Corporation Quantum, International Business Machines Corporation T. J. Watson Research Center

L

Laura Gagliardi