Weighted active space protocol for multireference machine-learned potentials

A Aniruddha Seal (Department of Chemistry and Chicago Center for Theoretical Chemistry) S Simone Perego (Atomistic Simulations) M Matthew R. Hennefarth (Department of Chemistry and Chicago Center for Theoretical Chemistry) U Umberto Raucci (Atomistic Simulations) L Luigi Bonati (Atomistic Simulations, Istituto Italiano di Tecnologia, Via Enrico Melen 83, 16142 Genoa, Italy) A Andrew L. Ferguson (Department of Chemistry) M Michele Parrinello (Atomistic Simulations, Istituto Italiano di Tecnologia, Via Enrico Melen 83, 16142 Genoa, Italy) L Laura Gagliardi

Abstract

Multireference methods such as multiconfiguration pair-density functional theory accurately capture electronic correlation in systems with strong multiconfigurational character, but their cost precludes direct use in molecular dynamics. Combining these methods with machine-learned interatomic potentials (MLPs) can extend their reach. However, the sensitivity of multireference calculations to the choice of the active space complicates the consistent evaluation of energies and gradients across structurally diverse nuclear configurations. To overcome this limitation, we introduce the weighted active space protocol (WASP), a systematic approach to assign a consistent active space for a given system across uncorrelated configurations. By integrating WASP with MLPs and enhanced sampling techniques, we propose a data-efficient active learning cycle that enables the training of an MLP on multireference data. We demonstrated the approach on the TiC + -catalyzed C–H activation of methane, a reaction that poses challenges for Kohn–Sham density functional theory due to its significant multireference character. This framework enables accurate and efficient modeling of catalytic dynamics, establishing a paradigm for simulating complex reactive processes beyond the limits of conventional electronic-structure methods.

Article Details

Volume / Issue Vol. 122, Issue 38
Published September 23, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (8)

A

Aniruddha Seal

Department of Chemistry and Chicago Center for Theoretical Chemistry

S

Simone Perego

Atomistic Simulations

M

Matthew R. Hennefarth

Department of Chemistry and Chicago Center for Theoretical Chemistry

U

Umberto Raucci

Atomistic Simulations

L

Luigi Bonati

Atomistic Simulations, Istituto Italiano di Tecnologia, Via Enrico Melen 83, 16142 Genoa, Italy

A

Andrew L. Ferguson

Department of Chemistry

M

Michele Parrinello

Atomistic Simulations, Istituto Italiano di Tecnologia, Via Enrico Melen 83, 16142 Genoa, Italy

L

Laura Gagliardi