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Probing the physical properties of the intergalactic medium using gamma-ray bursts

2021/02/04 by Tony Dalton, Simon L. Morris, S. L. Morris +1 · 1 citation
Physics and Astronomy · #Absorption (acoustics) #Astronomy #Astrophysical Phenomena and Observations #Astrophysics #Galaxy #Gamma-ray burst #Gamma-ray bursts and supernovae #Hydrogen #Intergalactic travel #Ionization #Metallicity #Optics #Physics #Quantum mechanics #Redshift #Spectral line #Stellar, planetary, and galactic studies #astro-ph.CO

paper · pdf · doi:10.1093/mnras/stab335

Accepted for publication in MNRAS, 18 pages, 13 figures

arxiv created 2021/02/04 · openalex publication_date 2021/02/05 · arxiv updated 2021/02/17 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/05

Abstract

ABSTRACT We use gamma-ray burst (GRB) spectra total continuum absorption to estimate the key intergalactic medium (IGM) properties of hydrogen column density (\mathit NHXIGM), metallicity, temperature, and ionization parameter over a redshift range of 1.6 ≤ z ≤ 6.3, using photoionization equilibrium (PIE) and collisional ionization equilibrium (CIE) models for the ionized plasma. We use more realistic host metallicity, dust corrected where available, in generating the host absorption model, assuming that the host intrinsic hydrogen column density is equal to the measured ionization corrected intrinsic neutral column from UV spectra (\it N_H \small I,IC). We find that the IGM property results are similar, regardless of whether the model assumes all PIE or CIE. The \mathit NHXIGM scales as (1 + z)1.0–1.9, with equivalent hydrogen mean density at z = 0 of n0 = 1.8+1.5-1.2 × 10-7 cm−3. The metallicity ranges from ∼ 0.1 Z\odot at redshift z ∼ 2 to ∼ 0.001 Z\odot at redshift z > 4. The PIE model implies a less rapid decline in average metallicity with redshift compared to CIE. Under CIE, the temperature ranges between 5.0 < log (T/K) < 7.1. For PIE the ionization parameter ranges between 0.1 < log (ξ) < 2.9. Using our model, we conclude that the IGM contributes substantially to the total absorption seen in GRB spectra and that this contribution rises with redshift, explaining why the hydrogen column density inferred from X-rays is substantially in excess of the intrinsic host contribution measured in UV.

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