A Stochastic Cluster Expansion for Electronic Correlation in Large Systems. Journal Article uri icon

Overview

abstract

  • Accurate many-body treatments of condensed-phase systems are challenging because correlated solvers such as the full configuration interaction (FCI) and the density matrix renormalization group (DMRG) scale exponentially with system size. Downfolding and embedding approaches mitigate this cost but typically require prior selection of a correlated subspace, which can be difficult to determine in heterogeneous or extended systems. Here, we introduce a stochastic cluster expansion framework for efficiently recovering the total correlation energy of large systems with near-DMRG accuracy and without the need to select an active space a priori. By combining correlation contributions from randomly sampled environment orbitals with an exactly treated subspace of interest, the method reproduces total energies for nonreacting and reactive systems while drastically reducing computational cost. The approach also provides a quantitative diagnostic for molecule-solvent correlation, guiding principled embedding decisions. This framework enables systematically improvable many-body calculations in extended systems, opening the door to high-accuracy studies of chemical processes in condensed phase environments.

publication date

  • April 30, 2026

Date in CU Experts

  • April 18, 2026 10:01 AM

Full Author List

  • Canestraight A; Dominic AJ; Montoya-Castillo A; Veis L; Vlcek V

author count

  • 5

Other Profiles

Electronic International Standard Serial Number (EISSN)

  • 1948-7185

Additional Document Info

start page

  • 4967

end page

  • 4973

volume

  • 17

issue

  • 17