English

Improved Carbon and Nitrogen Isotopic Ratios for CH$_3$CN in Titan's Atmosphere Using ALMA

Earth and Planetary Astrophysics 2025-03-14 v1

Abstract

Titan, Saturn's largest satellite, maintains an atmosphere composed primarily of nitrogen (N2_2) and methane (CH4_4) that leads to a complex organic chemistry. Some of the nitriles (CN-bearing organics) on Titan are known to have substantially enhanced 15^{15}N abundances compared to Earth and to Titan's dominant nitrogen (N2_2) reservoir. The 14^{14}N/15^{15}N isotopic ratio in Titan's nitriles can provide better constraints on the synthesis of nitrogen-bearing organics in planetary atmospheres as well as insights into the origin of Titan's large nitrogen abundance. Using high signal-to-noise ratio (>13>13), disk-integrated observations obtained with the Atacama Large Millimeter/submillimeter Array (ALMA) Band 6 receiver (211-275 GHz), we measure the 14^{14}N/15^{15}N and 12^{12}C/13^{13}C isotopic ratios of acetonitrile (CH3_3CN) in Titan's stratosphere. Using the Nonlinear optimal Estimator for MultivariatE spectral analySIS (NEMESIS), we derived the CH3_3CN/13^{13}CH3_3CN ratio to be 89.2 ±\pm 7.0 and the CH3_3CN/CH3_313^{13}CN ratio to be 91.2 ±\pm 6.0, in agreement with the 12^{12}C/13^{13}C ratio in Titan's methane, and other Solar System species. We found the 14^{14}N/15^{15}N isotopic ratio to be 68.9 ±\pm 4.2, consistent with previously derived values for HCN and HC3_3N, confirming an enhanced 15^{15}N abundance in Titan's nitriles compared with the bulk atmospheric N2_2 value of 14^{14}N/15^{15}N = 168, in agreement with chemical models incorporating isotope-selective photodissociation of N2_2 at high altitudes.

Keywords

Cite

@article{arxiv.2503.09897,
  title  = {Improved Carbon and Nitrogen Isotopic Ratios for CH$_3$CN in Titan's Atmosphere Using ALMA},
  author = {J. Nosowitz and M. A. Cordiner and C. A. Nixon and A. E. Thelen and Z. Kisiel and N. A. Teanby and P. G. J. Irwin and S. B. Charnley and V. Vuitton},
  journal= {arXiv preprint arXiv:2503.09897},
  year   = {2025}
}

Comments

Accepted for publication in PSJ March 2025