Photoselective isotope fractionation dynamics of N <sub>2</sub> with cosmo and atmospheric chemistry perspectives

K Ksenia Komarova (The Fritz Haber Center for Molecular Dynamics, Institute of Chemistry, The Hebrew University of Jerusalem) N Natalia A. Gelfand (The Fritz Haber Center for Molecular Dynamics, Institute of Chemistry, The Hebrew University of Jerusalem) F Francoise Remacle (The Fritz Haber Center for Molecular Dynamics, Institute of Chemistry, The Hebrew University of Jerusalem) R Raphael D. Levine (The Fritz Haber Center for Molecular Dynamics, Institute of Chemistry, The Hebrew University of Jerusalem) S Subrata Chakraborty (Department of Chemistry and Biochemistry, University of California) T Teresa L. Jackson (Department of Chemistry and Biochemistry, University of California) O Oleg Kostko (Chemical Sciences Division, Lawrence Berkeley National Laboratory) M Mark H. Thiemens (Department of Chemistry and Biochemistry, University of California)

Abstract

Stable isotope ratio measurements provide valuable insights into a broad range of natural processes, from planetary atmospheres and climate to interstellar chemistry. Nitrogen, which has two stable isotopes, exhibits varying isotope ratios across the solar system. To model these observations, the isotope fraction as a function of energy is essential. At the Advanced Light Source (ALS), we measured the photodissociation of molecular nitrogen (N 2 ) with vacuum UV photons where a single photon is sufficiently energetic to dissociate the strong bond. The nitrogen atoms produced are scavenged with H 2 to form ammonia, whose isotopic makeup is determined. Blending the experiments with dynamical computations that include the shielding of light, we examine the isotopic composition and electronic atomic states produced. The measured photodissociation of N 2 at a natural isotopic composition with a frequency broad light beam exceptionally strongly favors the formation of the heavier nitrogen isotope, 15 N. Computations concur and suggest that the maximum in the quantum yield reflects significant variations in the specific electronic quantum states of the product N atoms that have quite different reactivities. Our quantum computations show that at similar energies, photodissociation of 14 N 14 N and 15 N 14 N can lead to different product channels. The computed dynamics include extensive state-selective spin–orbit and nonadiabatic couplings affecting the light absorption and dissociation pathways that proceed via the triplet manifold of states. Our results are relevant for future exploration missions, both in situ and sample-return and for other molecules such as O 2 and CO.

Article Details

Volume / Issue Vol. 122, Issue 29
Published July 22, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (8)

K

Ksenia Komarova

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

N

Natalia A. Gelfand

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

F

Francoise Remacle

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

R

Raphael D. Levine

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

S

Subrata Chakraborty

Department of Chemistry and Biochemistry, University of California

T

Teresa L. Jackson

Department of Chemistry and Biochemistry, University of California

O

Oleg Kostko

Chemical Sciences Division, Lawrence Berkeley National Laboratory

M

Mark H. Thiemens

Department of Chemistry and Biochemistry, University of California