Improved measurements of the intergalactic medium temperature around quasars: possible evidence for the initial stages of He-II reionisation at z~6
James S. Bolton (1), George D. Becker (2), Sudhir Raskutti (1), J., Stuart B. Wyithe (1), Martin G. Haehnelt (2), Wallace L.W. Sargent (3) ((1), Melbourne, (2) KICC/IoA Cambridge, (3) Caltech)

TL;DR
This study measures the temperature of the intergalactic medium near quasars at z~6, providing evidence for early He-II reionisation stages and offering new constraints on high-redshift IGM heating processes.
Contribution
It presents the highest-redshift IGM temperature measurements, indicating early He-II reionisation and refining understanding of IGM thermal history at z~6.
Findings
Average IGM temperature log(T_0/K)=4.21±0.03 at z~6.
Evidence of additional heating likely due to He-II reionisation.
No significant thermal proximity effect detected.
Abstract
We present measurements of the intergalactic medium (IGM) temperature within ~5 proper Mpc of seven luminous quasars at z~6. The constraints are obtained from the Doppler widths of Lyman-alpha absorption lines in the quasar near-zones and build upon our previous measurement for the z=6.02 quasar SDSS J0818+1722. The expanded data set, combined with an improved treatment of systematic uncertainties, yields an average temperature at the mean density of log (T_0/K) = 4.21 \pm 0.03 (\pm^0.06_0.07) at 68 (95) per cent confidence for a flat prior distribution over 3.2 < log (T_0/K) < 4.8. In comparison, temperatures measured from the general IGM at z~5 are ~0.3 dex cooler, implying an additional source of heating around these quasars which is not yet present in the general IGM at slightly lower redshift. This heating is most likely due to the recent reionisation of He-II in vicinity of these…
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