论文标题

Einstein-Maxwell Dilaton-Xion重力与观察到的射流功率和辐射效率的特征

Signatures of Einstein-Maxwell dilaton-axion gravity from the observed jet power and the radiative efficiency

论文作者

Banerjee, Indrani, Mandal, Bhaswati, SenGupta, Soumitra

论文摘要

Einstein-Maxwell Dilaton-Xion(EMDA)重力是在杂弦理论的低能量有效作用中产生的,并提供了一个简单的框架来探索同一标志。从弦行动中遗传的动作中遗传的DILATON和轴突场在通货膨胀宇宙学和解释宇宙的当前加速扩张方面产生了有趣的后果。因此,值得在可用的天体物理观察中搜索这些田地的足迹。由于预计爱因斯坦重力将在高曲率结构域中接收量子校正,因此黑洞的近地平线状态似乎是测试这些偏离一般相对性的理想天体物理实验室。 EMDA重力中的精确,固定和轴对称的黑洞溶液对应于带有Dilaton电荷的Kerr-Sen时空,而角动量则由轴向场采购。据信,从积聚磁盘上的弹道喷射和连续频谱的峰值发射非常接近事件范围,因此应带有背景时空的烙印。我们计算了Kerr-Sen背景中连续频谱得出的射流功率和辐射效率,并将它们与微Quasars的相应观察结果进行了比较。我们的分析表明,与带有Dilaton电荷的Kerr-Sen黑洞相比,Kerr黑洞更受青睐。

The Einstein-Maxwell dilaton-axion (EMDA) gravity arises in the low energy effective action of the heterotic string theory and provides a simple framework to explore the signatures of the same. The dilaton and the axion fields inherited in the action from string compactifications have interesting consequences in inflationary cosmology and in explaining the present accelerated expansion of the universe. It is therefore worthwhile to search for the footprints of these fields in the available astrophysical observations. Since Einstein gravity is expected to receive quantum corrections in the high curvature domain, the near horizon regime of black holes seems to be the ideal astrophysical laboratory to test these deviations from general relativity. Exact, stationary and axisymmetric black hole solution in EMDA gravity corresponds to the Kerr-Sen spacetime which carries dilaton charge, while the angular momentum is sourced by the axion field. The ballistic jets and the peak emission of the continuum spectrum from the accretion disk are believed to be launched very close to the event horizon and hence should bear the imprints of the background spacetime. We compute the jet power and the radiative efficiency derived from the continuum spectrum in the Kerr-Sen background and compare them with the corresponding observations of microquasars. Our analysis reveals that Kerr black holes are more favored compared to Kerr-Sen black holes with dilaton charges.

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