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Critical-angle x-ray transmission grating spectrometer with extended bandpass and resolving power > 10,000

机译:临界角X射线透射光栅光谱仪,带通扩展且分辨力> 10,000

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A number of high priority subjects in astrophysics can be addressed by a state-of-the-art soft x-ray grating spectrometer, such as the role of Active Galactic Nuclei in galaxy and star formation, characterization of the Warm-Hot Intergalactic Medium and the missing baryon problem, characterization of halos around the Milky Way and nearby galaxies, as well as stellar coronae and surrounding winds and disks. An Explorer-scale, large-area (> 1,000 cm~2), high resolving power (R = λ/Δλ > 3,000) soft x-ray grating spectrometer is highly feasible based on Critical-Angle Transmission (CAT) grating technology, even for telescopes with angular resolution of 5-10 arcsec. Still, significantly higher performance can be provided by a CAT grating spectrometer on an X-ray-Surveyor-type mission. CAT gratings combine the advantages of blazed reflection gratings (high efficiency, use of higher diffraction orders) with those of conventional transmission gratings (low mass, relaxed alignment tolerances and temperature requirements, transparent at higher energies) with minimal mission resource requirements. They are high-efficiency blazed transmission gratings that consist of freestanding, ultra-high aspect-ratio grating bars fabricated from silicon-on-insulator (SOI) wafers using advanced anisotropic dry and wet etch techniques. Blazing is achieved through grazing-incidence reflection off the smooth grating bar sidewalls. The reflection properties of silicon are well matched to the soft x-ray band, and existing silicon CAT gratings can exceed 30% absolute diffraction efficiency, with clear paths for further improvement. Nevertheless, CAT gratings with sidewalls made of higher atomic number elements allow extension of the CAT grating principle to higher energies and larger dispersion angles, thus enabling higher resolving power at shorter wavelengths. We show x-ray data from CAT gratings coated with a thin layer of platinum using atomic layer deposition, and demonstrate efficient blazing to higher energies and much larger blaze angles than possible with silicon alone. We also report on measurements of the resolving power of a breadboard CAT grating spectrometer consisting of a Wolter-I slumped-glass focusing mirror pair from Goddard Space Flight Center and CAT gratings, performed at the Marshall Space Flight Center Stray Light Facility. Measurement of the Al K_α doublet in 18th diffraction order shows resolving power > 10,000, based on conservative preliminary analysis. This demonstrates that currently fabricated CAT gratings are compatible with the most advanced grating spectrometer instrument designs for future soft x-ray spectroscopy missions.
机译:先进的软X射线光栅光谱仪可以解决许多天体物理学中的高优先主题,例如,主动银河核在星系和恒星形成中的作用,热热星际介质的表征以及缺少的重子问题,银河系和附近星系周围的光晕的特征,以及恒星日冕以及周围的风和磁盘。基于临界角透射(CAT)光栅技术,即使是探索者级的大面积(> 1,000 cm〜2),高分辨力(R =λ/Δλ> 3,000)的软X射线光栅光谱仪也是高度可行的,甚至适用于角分辨率为5-10 arcsec的望远镜。仍然可以通过X射线测量仪型任务的CAT光栅光谱仪提供更高的性能。 CAT光栅结合了闪耀反射光栅的优势(高效率,使用更高的衍射级)与常规透射光栅的优势(质量轻,对准公差和温度要求宽松,在较高能量下透明),且任务资源需求最少。它们是高效的火焰透射光栅,由独立的超高纵横比光栅棒组成,该光栅棒是使用先进的各向异性干法和湿法蚀刻技术由绝缘体上硅(SOI)晶片制成的。通过从光滑的光栅条侧壁上掠入入射反射来实现起火。硅的反射特性与软X射线波段非常匹配,并且现有的硅CAT光栅的绝对衍射效率可以超过30%,并且有清晰的路径可以进一步改善。然而,具有由更高原子序数元素制成的侧壁的CAT光栅可以将CAT光栅原理扩展到更高的能量和更大的色散角,从而在较短的波长下实现更高的分辨能力。我们显示了使用原子层沉积法从涂有铂薄层的CAT光栅获得的X射线数据,并证明了有效的火焰燃烧比单独使用硅可能具有更高的能量和更大的火焰角度。我们还报告了对面包板CAT光栅光谱仪的分辨能力的测量结果,该光谱仪由来自Goddard航天中心的Wolter-I倾斜玻璃聚焦镜对和CAT光栅组成,在马歇尔航天中心的杂散光设施中进行。根据保守的初步分析,对AlK_α双峰的18衍射级测量显示分辨力> 10,000。这表明当前制造的CAT光栅与最先进的光栅光谱仪仪器设计兼容,可用于未来的软X射线光谱任务。

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