Measuring correlation and entanglement between molecular orbitals on a trapped-ion quantum computer

G Gabriel Greene-Diniz C Chris N. Self M Michal Krompiec L Luuk Coopmans M Marcello Benedetti D David Muñoz Ramo M Matthias Rosenkranz

Abstract

Abstract Quantifying correlation and entanglement between molecular orbitals can elucidate the role of quantum effects in strongly correlated reaction processes. However, accurately storing the wavefunction for a classical computation of those quantities can be prohibitive. Here we use the Quantinuum H1-1 trapped-ion quantum computer to calculate von Neumann entropies which quantify the orbital correlation and entanglement in a strongly correlated molecular system relevant to lithium-ion batteries (vinylene carbonate interacting with an O2 molecule). As shown in previous works, fermionic superselection rules decrease correlations and reduce measurement overheads for constructing orbital reduced density matrices. Taking into account superselection rules we further reduce the number of measurements by finding commuting sets of Pauli operators. Using low overhead noise reduction techniques, we calculate von Neumann entropies in excellent agreement with noiseless benchmarks, indicating that correlations and entanglement between molecular orbitals can be accurately estimated from a quantum computation. Our results show that the one-orbital entanglement vanishes unless opposite-spin open shell configurations are present in the wavefunction.

Article Details

Volume / Issue Vol. 15, Issue 1
Published August 04, 2025
ISSN 2045-2322
Publisher Nature Portfolio

Journal Info

Scientific Reports

Nature Portfolio

ISSN: 2045-2322 Open Access Life Sciences

Authors (7)

G

Gabriel Greene-Diniz

C

Chris N. Self

M

Michal Krompiec

L

Luuk Coopmans

M

Marcello Benedetti

D

David Muñoz Ramo

M

Matthias Rosenkranz