论文标题

与重力镜头相比,等离子体镜头 - 形式主义和变性

Plasma lensing in comparison to gravitational lensing -- Formalism and degeneracies

论文作者

Wagner, Jenny, Er, Xinzhong

论文摘要

引力和等离子体镜头在几何光学元件上具有相同的数学形式主义。这两种现象都可以通过预测的二维偏转电位有效地描述,在单个薄透镜平面中,梯度引起瞬时光偏转。我们强调了发生的时间延迟和镜头方程的差异是因为等离子体镜头是由与偏差的电子密度成比例直接成正比的电势引起的,而重力透镜是由与Poisson方程相关的差异质量密度相关的电位引起的。由于我们将血浆和重力镜头视为薄屏幕有效理论,因此它们的脱落性都由偏转物体的未知分布引起。为了引导形式主义内在的变性性血浆镜头,我们发现它们类似于引力透镜中发生的形式。为了打破变性,星系和星系群体尺度很强的重力透镜必须依靠其他假设或互补观察结果。可以通过模拟和分析有效的理论提供物理上现实的假设,以达到自洽的镜头和来源重建。在血浆镜头中,对偏转电子密度分布的更深入了解仍在开发中,因此基于模型的综合镜头重建是不可能的。但是,我们表明瞬态镜头和多波长观察有助于打破出现​​的变性。我们得出的结论是,目前,基于观察的局部晶状体特性的推断似乎是进一步探测等离子体电子密度的形态的最佳方法。由于镜头变性的简单基于证据的断裂,我们希望对局部等离子体电子密度的限制比重力偏转的质量更严格。

Gravitational and plasma lensing share the same mathematical formalism in the limit of geometrical optics. Both phenomena can be effectively described by a projected, two-dimensional deflection potential whose gradient causes an instantaneous light deflection in a single, thin lens plane. We highlight the differences in the time-delay and lensing equations that occur because plasma lensing is caused by a potential directly proportional to the deflecting electron number density and gravitational lensing is caused by a potential related to the deflecting mass density by a Poisson equation. Since we treat plasma and gravitational lensing as thin-screen effective theories, their degeneracies are both caused by the unknown distribution of deflecting objects. Deriving the formalism-intrinsic degeneracies for plasma lensing, we find that they are analogous to those occurring in gravitational lensing. To break the degeneracies, galaxies and galaxy-cluster scale strong gravitational lenses must rely on additional assumptions or complementary observations. Physically realistic assumptions to arrive at self-consistent lens and source reconstructions can be provided by simulations and analytical effective theories. In plasma lensing, a deeper understanding of the deflecting electron density distributions is still under development, so that a model-based comprehensive lens reconstruction is not yet possible. However, we show that transient lenses and multi-wavelength observations help to break the arising degeneracies. We conclude that the development of an observation-based inference of local lens properties seems currently the best way to further probe the morphologies of plasma electron densities. Due to the simpler evidence-based breaking of the lensing degeneracies, we expect to obtain tighter constraints on the local plasma electron densities than on the gravitationally deflecting masses.

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