Hidden features in the OH-stretching spectra of amino acid decorated air–water interfaces

U Uvinduni I. Premadasa (Chemical Sciences Division) D Dengpan Dong (Chemical Sciences Division, Oak Ridge National Laboratory , Oak Ridge, Tennessee 37831,) V Vyacheslav S. Bryantsev (Chemical Sciences Division) B Benjamin Doughty (Chemical Sciences Division) S Santanu Roy (Chemical Science Division)

Abstract

Chemical reactivity at the air–water interface is governed by the interfacial solvation of reactive species. For instance, during aqueous amino acid-based CO2 absorption, water reorganizes around the reactive sites and couples dynamically with reaction pathways, facilitating the reaction. In this context, surface-sensitive vibrational sum-frequency generation (vSFG) spectroscopy can probe the OH stretch vibrations of interfacial water and determine the solvation structures around reactants and products, thereby furthering our understanding of the role of interfacial solvation. However, vSFG spectra of the air–water interface in the presence of charged species can be remarkably complex; key species-bound local water structures with distinct orientations may be hidden beneath prominent vSFG peaks arising from water–water hydrogen bonds and remain difficult to resolve. Here, we measure and compute vSFG spectra of the water OH stretch at air–water interfaces decorated with amino acids in their zwitterionic and anionic forms, as well as equimolar mixtures of these forms with bicarbonate. The latter represents post-CO2-absorption conditions. We find that computing depth- and frequency-dependent spectral densities—decomposed into contributions from water molecules hydrogen-bonded exclusively to other water molecules, exclusively to amines, exclusively to carboxylates, or shared between these polar/charged groups—is indispensable for accurate interpretation of the vSFG spectra. Key findings include orientational flip-flop in water sub-layers, strong carboxylate-water H-bonding, and water orientational ordering extending into the bulk aqueous phase induced by anionic amino acids. This study provides a computational spectroscopic platform for improved understanding of interfacial solvation relevant to interfacial reactivity.

Article Details

Volume / Issue Vol. 164, Issue 22
Published June 14, 2026
ISSN 0021-9606
Publisher American Institute of Physics

Journal Info

The Journal of Chemical Physics

American Institute of Physics

ISSN: 0021-9606 Physical Sciences

Authors (5)

U

Uvinduni I. Premadasa

Chemical Sciences Division

D

Dengpan Dong

Chemical Sciences Division, Oak Ridge National Laboratory , Oak Ridge, Tennessee 37831,

V

Vyacheslav S. Bryantsev

Chemical Sciences Division

B

Benjamin Doughty

Chemical Sciences Division

S

Santanu Roy

Chemical Science Division