The formation of IRIS diagnostics V. A quintessential model atom of C II and general formation properties of the C II lines at 133.5 nm
arXiv:1508.04365 · doi:10.1088/0004-637X/811/2/80
Abstract
The 133.5 nm lines are important observables for the NASA/SMEX mission Interface Region Imaging Spectrograph (IRIS). To make 3D non-LTE radiative transfer computationally feasible it is crucial to have a model atom with as few levels as possible while retaining the main physical processes. We here develop such a model atom and we study the general formation properties of the C II lines. We find that a nine-level model atom of C I-C III with the transitions treated assuming complete frequency redistribution (CRD) suffices to describe the 133.5 nm lines. 3D scattering effects are important for the intensity in the core of the line. The lines are formed in the optically thick regime. The core intensity is formed in layers where the temperature is about 10kK at the base of the transition region. The lines are 1.2-4 times wider than the atomic absorption profile due to the formation in the optically thick regime. The smaller opacity broadening happens for single peak intensity profiles where the chromospheric temperature is low with a steep source function increase into the transition region, the larger broadening happens when there is a temperature increase from the photosphere to the low chromosphere leading to a local source function maximum and a double peak intensity profile with a central reversal. Assuming optically thin formation with the standard coronal approximation leads to several errors: Neglecting photoionization severly underestimates the amount of C II at temperatures below 16kK, erroneously shifts the formation from 10kK to 25kK and leads to too low intensities.
Accepted for publication by the Astrophysical Journal
References in corpus (4)
- Non-equilibrium hydrogen ionization in 2D simulations of the solar atmosphere
- The Formation of IRIS diagnostics. IV. The Mg II triplet lines as a new diagnostic for lower chromospheric heating
- The formation of IRIS diagnostics VI. The Diagnostic Potential of the C II Lines at 133.5 nm in the Solar Atmosphere
- Heating of the magnetic chromosphere: observational constraints from Ca II 8542 spectra
Cited by in corpus (46)
- A publicly available simulation of an enhanced network region of the Sun
- Three-dimensional modeling of the Ca II H&K lines in the solar atmosphere
- Si IV Resonance Line Emission During Solar Flares: Non-LTE, Non-equilibrium, Radiation Transfer Simulations
- The formation of IRIS diagnostics VI. The Diagnostic Potential of the C II Lines at 133.5 nm in the Solar Atmosphere
- IRIS observations of short-term variability in moss associated with transient hot coronal loops
- The Formation of IRIS Diagnostics. VII. The Formation of the OI 135.56 nm Line in the Solar Atmosphere
- The Atmospheric Response to High Nonthermal Electron Beam Fluxes in Solar Flares. II. Hydrogen Broadening Predictions for Solar Flare Observations with the Daniel K. Inouye Solar Telescope
- Casting the Coronal Magnetic Field Reconstruction Tools in 3D Using MHD Bifrost Model
- Millimeter radiation from a 3D model of the solar atmosphere II. Chromospheric magnetic field
- Spectral Evidence for Heating at Large Column Mass in Umbral Solar Flare Kernels I: IRIS NUV Spectra of the X1 Solar Flare of 2014 Oct 25
- Chromospheric heating due to cancellation of quiet Sun internetwork fields
- Modelling Of The Hydrogen Lyman Lines In Solar Flares
- Bridging the Gap: Capturing the Ly Counterpart of a Type-II Spicule and its Heating Evolution with VAULT2.0 and IRIS Observations
- Numerical simulations and observations of Mg II in the solar chromosphere
- Multi thermal atmosphere of a mini solar flare during magnetic reconnection observed with IRIS
- Efficient Calculation of Non-Local Thermodynamic Equilibrium Effects in Multithreaded Hydrodynamic Simulations of Solar Flares
- Exploring mutual information between IRIS spectral lines. I. Correlations between spectral lines during solar flares and within the quiet Sun
- Modelling ion populations in astrophysical plasmas: carbon in the solar transition region
- Force-Free Field Reconstructions Enhanced by Chromospheric Magnetic Field Data
- Modeling Mg II during Solar Flares. II. Non-equilibrium Effects
- Modelling low charge ions in the solar atmosphere
- The Formation of IRIS Diagnostics. IX. The Formation of the C I 135.58 Line in the Solar Atmosphere
- Mg ii h&k spectra of an enhanced network region simulated with the MURaM-ChE code. Results using 1.5D synthesis
- Numerical non-LTE 3D radiative transfer using a multigrid method
- Exploring mutual information between IRIS spectral lines. II. Calculating the most probable response in all spectral windows
- Statistical Study of Chromospheric Evaporation in Impulsive Phase of Solar Flares
- The influence of photo-induced processes and charge transfer on carbon and oxygen in the lower solar atmosphere
- Power-law energy distributions of small-scale impulsive events on the active Sun: Results from IRIS
- From Chromospheric Evaporation to Coronal Rain: An Investigation of the Mass and Energy Cycle of a Flare
- Small-scale loops heated to transition region temperatures and their chromospheric signatures in the simulated solar atmosphere
- A benchmark study of atomic models for the transition region against quiet Sun observations
- The dynamic chromosphere: pushing the boundaries of observations and models
- Statistical analysis of the Si I 6560.58 Å line observed by CHASE
- Simultaneous ALMA-Hinode-IRIS observations on footpoint signatures of a soft X-ray loop-like microflare
- Structure of sunspot light bridges in the chromosphere and transition region
- Solar Flare Irradiance: Observations and Physical Modeling
- A multi-diagnostic spectral analysis of penumbral microjets
- Call and Response: A Time-Resolved Study of Chromospheric Evaporation in a Large Solar Flare
- The Transition Region of Solar Flare Loops
- An in-depth analysis of quiet-Sun IRIS Brightenings
- Connecting Atmospheric Properties and Synthetic Emission of Shock Waves Using 3D RMHD Simulations of Quiet Sun
- CHIANTI -- an atomic database for emission lines -- Paper XVIII. Version 11, advanced ionization equilibrium models: density and charge transfer effects
- A new view of the solar interface region from the Interface Region Imaging Spectrograph (IRIS)
- On the intensity ratio variation of the Si IV 1394/1403 Å lines during solar flares
- On the formation of Lyman and the O I 1027 and 1028 Å spectral lines
- Small-scale energetic phenomena in Hε: Ellerman bombs, UV bursts, and small flares