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Infrared absorption of methanol-water clusters (CH 3 OH) n (H 2 O), n = 1-4, recorded with the VUV-ionization/IR-depletion technique.

We recorded infrared (IR) spectra in the CH- and OH-stretching regions of size-selected clusters of methanol (M) with one water molecule (W), represented as Mn W, n = 1-4, in a pulsed supersonic jet using the photoionization/IR-depletion technique. Vacuum ultraviolet emission at 118 nm served as the source of ionization in a time-of-flight mass spectrometer to detect clusters Mn W as protonated forms Mn-1 WH+ . The variations in intensities of Mn-1 WH+ were monitored as the wavelength of the IR laser light was tuned across the range 2700-3800 cm-1 . IR spectra of size-selected clusters were obtained on processing of the observed action spectra of the related cluster-ions according to a mechanism that takes into account the production and loss of each cluster due to IR photodissociation. Spectra of methanol-water clusters in the OH region show significant variations as the number of methanol molecules increases, whereas those in the CH region are similar for all clusters. Scaled harmonic vibrational wavenumbers and relative IR intensities predicted with the M06-2X/aug-cc-pVTZ method for the methanol-water clusters are consistent with our experimental results. For dimers, absorption bands of a structure WM with H2 O as a hydrogen-bond donor were observed at 3570, 3682, and 3722 cm-1 , whereas weak bands of MW with methanol as a hydrogen-bond donor were observed at 3611 and 3753 cm-1 . For M2 W, the free OH band of H2 O was observed at 3721 cm-1 , whereas a broad feature was deconvoluted to three bands near 3425, 3472, and 3536 cm-1 , corresponding to the three hydrogen-bonded OH-stretching modes in a cyclic structure. For M3 W, the free OH shifted to 3715 cm-1 , and the hydrogen-bonded OH-stretching bands became much broader, with a weak feature near 3179 cm-1 corresponding to the symmetric OH-stretching mode of a cyclic structure. For M4 W, the observed spectrum agrees unsatisfactorily with predictions for the most stable cyclic structure, indicating significant contributions from branched isomers, which is distinctly different from M5 of which the cyclic form dominates.

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