Photochemical pathways in astronomical ices: A computational study of singlet oxygen reactions with hydrocarbons

A Amit Daniely (Fritz Haber Research Center for Molecular Dynamics, The Hebrew University of Jerusalem 1 , Jerusalem 9190401,) A Alon Zamir (Fritz Haber Research Center for Molecular Dynamics, The Hebrew University of Jerusalem 1 , Jerusalem 9190401,) H Helen R. Eisenberg (Fritz Haber Research Center for Molecular Dynamics, The Hebrew University of Jerusalem 1 , Jerusalem 9190401,) E Ester Livshits (Fritz Haber Research Center for Molecular Dynamics, The Hebrew University of Jerusalem 1 , Jerusalem 9190401,) E Elettra Piacentino (Harvard-Smithsonian Center for Astrophysics, Harvard 2 , Cambridge, Massachusetts 02138,) J Jennifer B. Bergner (College of Chemistry, University of California 1 , Berkeley, California 94720,) K Karin I. Öberg (Harvard-Smithsonian Center for Astrophysics, Harvard 2 , Cambridge, Massachusetts 02138,) T Tamar Stein (Fritz Haber Research Center for Molecular Dynamics and Institute of Chemistry, The Hebrew University of Jerusalem , 9091401 Jerusalem,)

Abstract

Complex organic molecules are widespread in different areas of the interstellar medium, including cold areas, such as molecular clouds, where chemical reactions occur in ice. Among the observed molecules are oxygen-bearing organic molecules, which are of high interest given their significant role in astrobiology. Despite the observed rich chemistry, the underlying molecular mechanisms responsible for molecular formation in such cold dilute areas are still not fully understood. In this paper, we study the unique chemistry taking place in astronomically relevant ices, where UV radiation is a central driving force for chemical reactions. Photofragmentation of ice components gives rise to highly reactive species, such as the O(1D) atom. These species provide a pathway for chemical complexity even in cold areas. Using quantum chemistry calculations, we demonstrate that O(1D) reacts barrierlessly with hydrocarbons. Moreover, photoprocessing of the reaction products (and other components of the ice), followed by radical recombination, is found to be an essential part of the overall mechanism. In ice containing O(1D) and hydrocarbons, the formation of formaldehyde in methane ice, acetaldehyde in ethane ice, and carbon monoxide in acetylene ice, and the consumption of alcohol in all systems, was predicted in agreement with experimental results.

Article Details

Volume / Issue Vol. 162, Issue 1
Published January 07, 2025
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 (8)

A

Amit Daniely

Fritz Haber Research Center for Molecular Dynamics, The Hebrew University of Jerusalem 1 , Jerusalem 9190401,

A

Alon Zamir

Fritz Haber Research Center for Molecular Dynamics, The Hebrew University of Jerusalem 1 , Jerusalem 9190401,

H

Helen R. Eisenberg

Fritz Haber Research Center for Molecular Dynamics, The Hebrew University of Jerusalem 1 , Jerusalem 9190401,

E

Ester Livshits

Fritz Haber Research Center for Molecular Dynamics, The Hebrew University of Jerusalem 1 , Jerusalem 9190401,

E

Elettra Piacentino

Harvard-Smithsonian Center for Astrophysics, Harvard 2 , Cambridge, Massachusetts 02138,

J

Jennifer B. Bergner

College of Chemistry, University of California 1 , Berkeley, California 94720,

K

Karin I. Öberg

Harvard-Smithsonian Center for Astrophysics, Harvard 2 , Cambridge, Massachusetts 02138,

T

Tamar Stein

Fritz Haber Research Center for Molecular Dynamics and Institute of Chemistry, The Hebrew University of Jerusalem , 9091401 Jerusalem,