Proton transfer in acetaldehyde-water clusters mediated by a single water molecule.

Phys Chem Chem Phys

Chemical Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA.

Published: September 2016

AI Article Synopsis

  • Proton transfer is a significant process in various fields like chemistry and biology, particularly involving interactions between acetaldehyde and water.
  • The research highlights a relay-type proton transfer mechanism where proton transfer occurs between acetaldehyde molecules through the assistance of a single water molecule.
  • Theoretical calculations and experimental data support that water-mediated proton transfer is the most energetically favorable process, with enhanced stability observed in cluster cations bonded to hydronium ions.

Article Abstract

Proton transfer in aqueous media is a ubiquitous process, occurring in acid-base chemistry, biology, and in atmospheric photochemistry. Photoionization mass spectrometry coupled with theoretical calculations demonstrate that a relay-type proton transfer mechanism is operational for single-water-molecule-assisted proton transfer between two acetaldehyde molecules in the gas phase. Threshold photoionization of acetaldehyde-water clusters leads to proton transfer between the formyl groups (-CH[double bond, length as m-dash]O) of one acetaldehyde molecule to another, and the subsequent formation of cationic moieties. Density functional theory computations reveal several plausible pathways of proton transfer in mixed cluster cations. Among these pathways, water-mediated proton transfer is energetically favored. Mass spectra and photoionization efficiency curves confirm these theoretical findings and also demonstrate the increased stability of cluster cations where acetaldehyde molecules are symmetrically bonded to the hydronium ion.

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Source
http://dx.doi.org/10.1039/c6cp04916hDOI Listing

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