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March 10, 2026Geophysical Research Letters2 citationsOpen Access

Resonant Vibrational Excitation and Overtone Vibrational Emissions of Nitric Oxide (NO) in Sub‐Auroral Ion Drift (SAID) Region: A Source of STEVE Continuum Emission

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AYAndrew W. YauUniversity of CalgaryAHAndrew HowarthUniversity of CalgaryWPW. K. PetersonUniversity of Colorado Boulder

Key Points

  • This analysis aims to investigate the vibrational emissions of nitric oxide in the sub-auroral ion drift region and their connection to STEVE events.
  • Examined published spectroscopic data and excitation rate coefficients for nitric oxide.
  • Simulated spectral characteristics and volume-emission-rate profiles of emissions in STEVE events.
  • Analyzed altitude profiles and luminosity for nitric oxide emissions.
  • Nitric oxide vibrational excitation leads to multiple overtone emissions seen in the visible spectrum.
  • Volume-emission-rate peaks at approximately 185 km altitude with luminosity at kilo-Raileigh level.
  • Simulated spectra closely match observed STEVE events, indicating a significant contribution.

Abstract

Abstract At elevated electron temperature () inside Sub‐Auroral Ion Drift, resonant vibrational excitation (RVE) increases the vibrationally excited () nitric oxide (NO) population in the E‐region, which undergoes overtone vibrational emissions () in multiple (>70) bands of multiple (>45) emission lines in the visible spectrum. Using published spectroscopic, excitation rate coefficient, and Einstein coefficient data, we analyze the spectral characteristics and volume‐emission‐rate (VER) and luminosity altitude profiles of this quasi‐continuum in Strong Thermal Emission Velocity Enhancement (STEVE) events, for which the formation mechanism remains an open question. The simulated spectrum exhibits closely spaced and overlapping peaks resembling portions of the observed STEVE spectra. The VER peaks at ∼185 km‐altitude, with peak luminosity (at 380–780 nm) at the kilo‐Raileigh level. These results suggest multi‐band NO vibrational emissions produced by RVE to be likely a significant contributor to the STEVE continuum.

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Cite This Study

Yau et al. (2026) studied this question.

synapsesocial.com/papers/69af950a70916d39fea4c34bhttps://doi.org/10.1029/2025gl119766
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