English

Neptune's Spatial Brightness Temperature Variations from the VLA and ALMA

Earth and Planetary Astrophysics 2021-04-15 v1

Abstract

We present spatially resolved (0.11.00.1'' - 1.0'') radio maps of Neptune taken from the Very Large Array and Atacama Large Submillimeter/Millimeter Array between 201520172015-2017. Combined, these observations probe from just below the main methane cloud deck at 1\sim 1 bar down to the NH4_4SH cloud at 50\sim50 bar. Prominent latitudinal variations in the brightness temperature are seen across the disk. Depending on wavelength, the south polar region is 5405-40 K brighter than the mid-latitudes and northern equatorial region. We use radiative transfer modeling coupled to Markov Chain Monte Carlo methods to retrieve H2_2S, NH3_3, and CH4_4 abundance profiles across the disk, though only strong constraints can be made for H2_2S. Below all cloud formation, the data are well fit by 53.813.4+18.9×53.8^{+18.9}_{-13.4}\times and 3.93.1+2.1×3.9^{+2.1}_{-3.1}\times protosolar enrichment in the H2_2S and NH3_3 abundances, respectively, assuming a dry adiabat. Models in which the radio-cold mid-latitudes and northern equatorial region are supersaturated in H2_2S are statistically favored over models following strict thermochemical equilibrium. H2_2S is more abundant at the equatorial region than at the poles, indicative of strong, persistent global circulation. Our results imply that Neptune's sulfur-to-nitrogen ratio exceeds unity as H2_2S is more abundant than NH3_3 in every retrieval. The absence of NH3_3 above 50 bar can be explained either by partial dissolution of NH3_3 in an ionic ocean at GPa pressures or by a planet formation scenario in which hydrated clathrates preferentially delivered sulfur rather than nitrogen onto planetesimals, or a combination of these hypotheses.

Keywords

Cite

@article{arxiv.2104.06554,
  title  = {Neptune's Spatial Brightness Temperature Variations from the VLA and ALMA},
  author = {Joshua Tollefson and Imke de Pater and Edward M. Molter and Robert J. Sault and Bryan J. Butler and Statia Luszcz-Cook and David DeBoer},
  journal= {arXiv preprint arXiv:2104.06554},
  year   = {2021}
}
R2 v1 2026-06-24T01:08:36.426Z