The Giant Gemini GMOS survey of zem > 4.4 quasars – I. Measuring the mean free path across cosmic time
The Giant Gemini GMOS survey of zem > 4.4 quasars – I. Measuring the mean free path across cosmic time
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对 zem > 4.4 类星体的巨型双子座 GMOS 巡天 – I. 测量跨宇宙时间的平均自由程
DOI:
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发表时间:
2014
期刊:
影响因子:
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通讯作者:
M. Fumagalli
中科院分区:
文献类型:
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作者:
G. Worseck;J. Prochaska;J. O’Meara;George D. Becker;S. L. Ellison;S. López;A. Meiksin;B. M'enard;Michael T. Murphy;M. Fumagalli
We have obtained spectra of 163 quasars at zem > 4.4 with the Gemini Multi Object Spectrometers, the largest publicly available sample of high-quality, low-resolution spectra at these redshifts. From this data set, we generated stacked quasar spectra in three redshift intervals at z ∼ 5 to model the average rest-frame Lyman continuum flux and to assess the mean free path λ 912 of the intergalactic medium to H I-ionizing radiation. At mean redshifts zq =(4.56, 4.86, 5.16), we measure λ 912 = (22.2 ± 2.3,15.1 ± 1.8,10.3 ± 1.6) h −1 proper Mpc with uncertainties dominated by sample variance. Combining our results with measurements from lower redshifts, the data are well modelled by a power law λ 912 = A[(1 + z) /5] η with A = (37 ± 2) h −1 Mpc and η =− 5.4 ± 0.4 at 2.3 <z< 5.5. This rapid evolution requires a physical mechanism – beyond cosmological expansion – which reduces the effective Lyman limit opacity. We speculate that the majority of H I Lyman limit opacity manifests in gas outside galactic dark matter haloes, tracing large-scale structures (e.g. filaments) whose average density and neutral fraction decreases with cosmic time. Our measurements of the mean free path shortly after H I reionization serve as a valuable boundary condition for numerical models thereof. Our measured λ 912 ≈ 10 Mpc at z =5.2 confirms that the intergalactic
DOI:
10.1088/0004-6256/145/1/4
发表时间:
2012-02
期刊:
The Astronomical Journal
影响因子:
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作者:
C. Willott;R. McLure;P. Hibon;R. Bielby;H. McCracken;J. Kneib;O. Ilbert;D. Bonfield;V. Bruce;M. Jarvis
通讯作者:
C. Willott;R. McLure;P. Hibon;R. Bielby;H. McCracken;J. Kneib;O. Ilbert;D. Bonfield;V. Bruce;M. Jarvis