xmm -牛顿偶然调查。六、x射线光度函数

J. Ebrero, J. Ebrero, F. J. Carrera, M. Page, J. Silverman, X. Barcons, M. Ceballos, A. Corral, Amalia Corral, R. Ceca, M. Watson
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引用次数: 52

摘要

我们给出了AGN在三个能带(软:0.5-2 keV,硬:2-10 keV和超硬:4.5-7.5 keV)下的x射线光度函数。我们使用了XMS调查以及其他高度完整的通量限制的深层和浅层调查,分别对软、硬和超硬波段的1009、435和119个震源进行了调查。我们模拟了硬源和超硬源的本征吸收(NH函数),并利用最大似然拟合技术计算了所有波段的本征x射线光度函数。我们发现x射线的光度函数(XLF)最适合用光度相关密度演化(LDDE)模型来描述。我们的结果显示与先前在Hard波段的结果总体上一致,尽管演化程度稍弱。我们在软波段的模型与该波段的其他作品有轻微的差异,我们现在的XLF的形状明显平坦。我们发现在超硬带中检测到的AGN比在硬带中检测到的AGN进化得更快。在硬和超硬波段吸收AGN的比例取决于x射线的光度。我们发现这个分数在硬波段有红移的演化证据,但在超硬波段没有,可能是由于统计量低。我们的最佳拟合XLF表明,高亮度AGN比低亮度AGN更早完全形成。根据一种反分层黑洞增长的设想,后一种来源占了宇宙吸积速率和质量密度的绝大部分。
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The XMM-Newton Serendipitous Survey. VI. The X-ray Luminosity Function
We present the X-ray luminosity function of AGN in three energy bands (Soft: 0.5-2 keV, Hard: 2-10 keV and Ultrahard: 4.5-7.5 keV). We have used the XMS survey along with other highly complete flux-limited deeper and shallower surveys for a total of 1009, 435 and 119 sources in the Soft, Hard and Ultrahard bands, respectively. We have modeled the intrinsic absorption of the Hard and Ultrahard sources (NH function) and computed the intrinsic X-ray luminosity function in all bands using a Maximum Likelihood fit technique to an analytical model. We find that the X-ray luminosity function (XLF) is best described by a Luminosity-Dependent Density Evolution (LDDE) model. Our results show a good overall agreement with previous results in the Hard band, although with slightly weaker evolution. Our model in the Soft band present slight discrepancies with other works in this band, the shape of our present day XLF being significantly flatter. We find faster evolution in the AGN detected in the Ultrahard band than those in the Hard band. The fraction of absorbed AGN in the Hard and Ultrahard bands is dependent on the X-ray luminosity. We find evidence of evolution of this fraction with redshift in the Hard band but not in the Ultrahard band, possibly due to the low statistics. Our best-fit XLF shows that the high-luminosity AGN are fully formed earlier than the less luminous AGN. The latter sources account for the vast majority of the accretion rate and mass density of the Universe, according to an anti-hierarchical black hole growth scenario.
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