Surface structure of water from soft X-ray second harmonic generation

D David J. Hoffman (SLAC National Accelerator Lab) S Shane W. Devlin (Department of Chemistry) D Douglas Garratt (Linac Coherent Light Source (LCLS), SLAC National Accelerator Laboratory 2 , 2575 Sand Hill Road, Menlo Park, California 94025,) S Sasawat Jamnuch J Jacob A. Spies B Bailey R. Nebgen D Daniel Schacher A Alexandria Do F Franky Bernal (Department of Chemistry) E Erika J. Riffe K Kristjan Kunnus C Christina Y. Hampton J Joseph Duris D David Cesar N Nicholas Sudar G Georgi L. Dakovski W Walter S. Drisdell (Chemical Sciences Division) K Keith V. Lawler A Agostino Marinelli M Michael W. Zuerch (Department of Chemistry) R Richard J. Saykally (Department of Chemistry) C Craig P. Schwartz T Tod A. Pascal (ATLAS Materials Physics Lab, Aiiso Yufeng Li Family Department of Chemical and Nano Engineering, University of California 1 , San Diego, La Jolla, California 92093,) J Jake D. Koralek (SLAC National Accelerator Lab)

Abstract

Abstract The microscopic structure of water’s surface is crucial to many natural and industrial processes, but studying its hydrogen bond (H-bond) network directly remains challenging due to the required interfacial sensitivity of experimental techniques. By leveraging advances in flat liquid sheet microjets and terawatt-scale attosecond soft X-ray pulses from the LCLS X-ray free electron laser, we employed soft X-ray second harmonic generation (SXSHG) spectroscopy to examine the liquid water/vapor interface. SXSHG combines the elemental selectivity of X-ray spectroscopies with the surface selectivity of SHG and gives access to the electronic structure of interfacial species. Here, we show the SXSHG spectrum differs from bulk water’s X-ray absorption, with its peak shifted several eV, indicating a vastly different electronic environment at the interface as compared to the bulk. First-principles electronic structure calculations show the signal is highly sensitive to H-bond interactions, such as water molecules accepting a single H-bond, which are surface abundant.

Article Details

Volume / Issue Vol. 16, Issue 1
Published November 26, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (24)

D

David J. Hoffman

SLAC National Accelerator Lab

S

Shane W. Devlin

Department of Chemistry

D

Douglas Garratt

Linac Coherent Light Source (LCLS), SLAC National Accelerator Laboratory 2 , 2575 Sand Hill Road, Menlo Park, California 94025,

S

Sasawat Jamnuch

J

Jacob A. Spies

B

Bailey R. Nebgen

D

Daniel Schacher

A

Alexandria Do

F

Franky Bernal

Department of Chemistry

E

Erika J. Riffe

K

Kristjan Kunnus

C

Christina Y. Hampton

J

Joseph Duris

D

David Cesar

N

Nicholas Sudar

G

Georgi L. Dakovski

W

Walter S. Drisdell

Chemical Sciences Division

K

Keith V. Lawler

A

Agostino Marinelli

M

Michael W. Zuerch

Department of Chemistry

R

Richard J. Saykally

Department of Chemistry

C

Craig P. Schwartz

T

Tod A. Pascal

ATLAS Materials Physics Lab, Aiiso Yufeng Li Family Department of Chemical and Nano Engineering, University of California 1 , San Diego, La Jolla, California 92093,

J

Jake D. Koralek

SLAC National Accelerator Lab