The 2dF QSO Redshift Survey – IV. The QSO power spectrum from the 10k catalogue

We present a power spectrum analysis of the 10k catalogue from the 2dF QSO Redshift Survey. Although the Survey currently has a patchy angular selection function, we use the Virgo Consortium's Hubble Volume simulation to demonstrate that we are able to make a useful first measurement of the pow...

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Published in:Monthly notices of the Royal Astronomical Society Vol. 329; no. 2; pp. 336 - 348
Main Authors: Hoyle, Fiona, Outram, P.J., Shanks, T., Croom, S.M., Boyle, B.J., Loaring, N.S., Miller, L., Smith, R.J.
Format: Journal Article
Language:English
Published: Oxford, UK Blackwell Science Ltd 11-01-2002
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Summary:We present a power spectrum analysis of the 10k catalogue from the 2dF QSO Redshift Survey. Although the Survey currently has a patchy angular selection function, we use the Virgo Consortium's Hubble Volume simulation to demonstrate that we are able to make a useful first measurement of the power spectrum over a wide range of scales. We compare the redshift space power spectra of QSOs with those measured for galaxies and Abell clusters at low redshift and find that they show similar shapes in their overlap range, , with . The amplitude of the QSO power spectrum at is almost comparable to that of galaxies at the present day if and (the Λ cosmology), and a factor of ≈3 lower if (the EdS cosmology) is assumed. The amplitude of the QSO power spectrum is a factor of ≈10 lower than that measured for Abell clusters at the present day. At larger scales, the QSO power spectra continue to rise robustly to ≈400h−1Mpc, implying more power at large scales than in the APM galaxy power spectrum measured by Baugh & Efstathiou. We split the QSO sample into two redshift bins and find little evolution in the amplitude of the power spectrum, consistent with the result for the QSO correlation function. In models with this represents evidence for a QSO mass bias that evolves as a function of time. We compare the QSO power spectra with cold dark matter (CDM) models to obtain a constraint on the shape parameter, Γ. For two choices of cosmology , and , , we find that the best fitting model has . In addition, we have shown that a power spectrum analysis of the Hubble Volume ΛCDM mock QSO catalogues with as input produces a result that is statistically consistent with the data. The analysis of the mock catalogues also indicates that the above results for Γ are unlikely to be dominated by systematic effects, owing to the current catalogue window. We conclude that the form of the QSO power spectrum shows large scale power significantly in excess of the standard CDM prediction, similar to that seen in local galaxy surveys at intermediate scales.
Bibliography:ark:/67375/HXZ-CWJBS2HN-N
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ObjectType-Article-2
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content type line 23
ISSN:0035-8711
1365-2966
DOI:10.1046/j.1365-8711.2002.04989.x