Localized sample-based quantum diagonalization for strongly correlated chemistry
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
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (10)
Qiaohong Wang
Pritzker School of Molecular Engineering, University of Chicago
Kevin J. Sung
International Business Machines Corporation Quantum, International Business Machines Corporation T. J. Watson Research Center
Ruhee D’Cunha
Department of Chemistry, University of Chicago
Matthew R. Hermes
Department of Chemistry
Tanvi Gujarati
Yukio Kawashima
International Business Machines Corporation Quantum, International Business Machines Corporation Research-Tokyo
Yu-ya Ohnishi
Materials Informatics Initiative, RD Technology and Digital Transformation Center, Electronic Materials Division, JSR Corporation
Gavin O. Jones
Mario Motta
International Business Machines Corporation Quantum, International Business Machines Corporation T. J. Watson Research Center
Laura Gagliardi