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Updated: Feb 28, 2026

Spatial Separation of Molecular Conformers and Clusters
Published on: January 9, 2014
Size-dependent femtosecond proton transfer in protonated methanol clusters
Sergei V Anishchik1, Naga Krishnakanth Katturi1, Jesse Sandhu1
1Department of Chemistry, Michigan State University, East Lansing, MI 48824, United State.
None:
Methanol clusters (CH3OH)n are prototypical hydrogen-bonded systems that bridge isolated molecules and bulk liquid methanol. Strong-field ionization of these clusters can trigger ultrafast charge migration, proton transfer, and isomerization; however, the onset timescales of these pathways remain largely unexplored despite extensive steady-state mass-spectrometric evidence for protonation and chemical rearrangement. Here we use femtosecond time-resolved strong-field ionization and disruptive probing to directly track the early-time dynamics of methanol clusters. Transient mass spectra yield size-dependent timescales for the formation of protonated clusters H+(CH3OH)n (n = 1-3) and an associated CHO˙+ radical cation. We find that both proton-transfer and subsequent stabilization become markedly faster with increasing cluster size. These measurements establish methanol clusters as a complementary benchmark to water for understanding ionization-initiated proton motion and chemical reorganization in hydrogen-bonded liquids.
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