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Role of diffractive and refractive optics in x-ray astronomy

机译:衍射和折射光学在X射线天文学中的作用

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No future X-ray telescope is likely ever to have angular resolution significantly superior to the Chandra X-Ray Observatory without adopting a new technology. We consider focusing systems based upon diffraction and refraction rather than grazing incidence reflection. The elements are Fresnel zone plates and refractive lenses in configurations where chromatic aberration is corrected over a finite bandwidth. This technique is likely to be especially effective in the intermediate regime between the 0.5 arcsec capability of the Chandra telescope and the one-tenth microarcsec resolution required for the NASA "Vision Mission" entitled the "Black Hole Imager". Diffractive/refractive systems can also be configured as high throughput flux concentrators for third generation X-ray timing studies and non-dispersive spectroscopy. They may also have a important role in very high resolution spectroscopy. Because these elements focus by transmitting X-rays at normal incidence they can be extremely lightweight compared to grazing incidence telescopes. Furthermore the figure accuracy and surface smoothness are much less critical. On the other hand diffractive/refractive optics are characterized by chromatic aberration, which can be corrected only in small wavelength bands. Focal lengths range up to 10~5 km making the application of diffractive/refractive X-ray optics to astronomy dependent upon the development of technology for formation flying of very widely separated spacecraft.
机译:如果不采用新技术,未来的X射线望远镜就不可能拥有比钱德拉X射线天文台明显更高的角分辨率。我们考虑基于衍射和折射而不是掠入射反射的聚焦系统。这些元件是菲涅耳波带片和折射透镜,其配置是在有限带宽上校正色差。在钱德拉望远镜的0.5弧秒能力与NASA名为“黑洞成像仪”的NASA“视觉任务”所需的十分之一微弧度分辨率之间的中间状态下,该技术可能特别有效。衍射/折射系统还可以配置为高通量通量集中器,用于第三代X射​​线定时研究和非色散光谱学。它们在超高分辨率光谱学中也可能起重要作用。由于这些元件通过在垂直入射时透射X射线来聚焦,因此与掠入射望远镜相比,它们可以非常轻便。此外,图形精度和表面平滑度的要求也要低得多。另一方面,衍射/折射光学器件的特征是色差,只能在小波长带中对其进行校正。焦距范围可达10〜5 km,这取决于在非常分离的航天器上进行编队飞行的技术发展,从而将衍射/折射X射线光学技术应用于天文学。

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