Quantifying electron correlation effects in ethanol decomposition pathways
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Ethanol decomposition is a prototypical multichannel organic reaction in which electron correlation plays a decisive role in determining
activation barriers and reaction selectivity. We use fixed-node diffusion Monte Carlo (FN-DMC) to investigate three principal decomposition
pathways: dehydration, C–C bond cleavage, and H2 elimination. The obtained results are compared with those from Hartree–Fock (HF),
hybrid density functional theory (B3LYP), modified Gaussian-2 composite theory, and experimental kinetic data. By recovering the missing
many-body correlation, FN-DMC lowers the HF forward activation barriers by 4–15 kcal mol−1 and yields barrier heights that are consistent
with available Arrhenius activation parameters within expected thermal corrections. A correlation-energy analysis along the intrinsic reaction
coordinate reveals a pathway-dependent modulation of dynamical correlation near the transition state, with the largest stabilization observed
for the dehydration channel. The results demonstrate that FN-DMC provides a robust description of static activation barriers and offers
mechanistic insight into the evolution of electron-correlation effects in complex bond-breaking reactions.
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CÂNDIDO, L.; HAI, G.-Q. Quantifying electron correlation effects in ethanol decomposition pathways. Journal of Chemical Physics, New York, v. 164, n. 9, e094302-1-094302-9, 2026. DOI: 10.1063/5.0315750. Disponível em: https://pubs.aip.org/aip/jcp/article/164/9/094302/3381767/Quantifying-electron-correlation-effects-in. Acesso em: 3 ago. 2026.