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Electrodynamics and Radiation from Rotating Neutron Star Magnetospheres

机译:旋转中子星磁光液的电动和辐射

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Neutron stars are compact objects rotating at high speed, up to a substantial fraction of the speed of light (up to 20% for millisecond pulsars) and possessing ultra-strong electromagnetic fields (close to and sometimes above the quantum critical field of 4.4 × 10 9 T ). Moreover, due to copious e ± pair creation within the magnetosphere, the relativistic plasma surrounding the star is forced into corotation up to the light cylinder where the corotation speed reaches the speed of light. The neutron star electromagnetic activity is powered by its rotation which becomes relativistic in the neighborhood of this light cylinder. These objects naturally induce relativistic rotation on macroscopic scales about several thousands of kilometers, a crucial ingredient to trigger the central engine as observed on Earth. In this paper, we elucidate some of the salient features of this corotating plasma subject to efficient particle acceleration and radiation, emphasizing several problems and limitations concerning current theories of neutron star magnetospheres. Relativistic rotation in these systems is indirectly probed by the radiation produced within the magnetosphere. Depending on the underlying assumptions about particle motion and radiation mechanisms, different signatures on their light curves, spectra, pulse profiles and polarization angles are expected in their broadband electromagnetic emission. We show that these measurements put stringent constraints on the way to describe particle electrodynamics in a rotating neutron star magnetosphere.
机译:中子恒星是紧凑的物体以高速旋转,直至光速的大部分(高达20%用于毫秒脉冲线),并具有超强电磁场(靠近且有时高于量子临界场4.4×10 9 T)。此外,由于磁极内的大量E±对产生,围绕恒星的相对论等离子体被迫进入光筒的光筒,其中光栅速度达到光速。中子星电磁活性由其旋转动力,在该光圆筒的附近变得相对态。这些物体自然地在大约数千公里的宏观尺度上诱导相对论旋转,这是一个关键的成分,以触发地球上观察到的中央发动机。在本文中,我们阐明了这种卡定等离子体的一些凸起特征,以实现有效的粒子加速和辐射,并强调有关中子星磁光学的电流理论的几个问题和限制。这些系统中的相对论旋转由磁极内产生的辐射间接探测。取决于关于粒子运动和辐射机制的潜在假设,在其光线曲线,光谱,脉冲谱和偏振角上的不同签名预期在其宽带电磁发射中。我们表明这些测量对旋转中子星磁层中描述粒子电动力学的方式进行了严格的约束。

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