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High Spectral Resolution, High Cadence, Imaging X-ray Microcalorimeters for Solar Physics

机译:太阳光谱用高光谱分辨率,高节奏X射线成像量热仪

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High spectral resolution, high cadence, imaging x-ray spectroscopy has the potential to revolutionize the study of the solar corona. To that end we have been developing transition-edge-sensor (TES) based x-ray microcalorimeter arrays for future solar physics missions where imaging and high energy resolution spectroscopy will enable previously impossible studies of the dynamics and energetics of the solar corona. The characteristics of these x-ray microcalorimeters are significantly different from conventional microcalorimeters developed for astrophysics because they need to accommodate much higher count rates (300-1000 cps) while maintaining high energy resolution of less than 4 eV FWHM in the X-ray energy band of 0.2-10 keV. The other main difference is a smaller pixel size (less than 75 x 75 square microns) than is typical for x-ray microcalorimeters in order to provide angular resolution less than 1 arcsecond. We have achieved at energy resolution of 2.15 eV at 6 keV in a pixel with a 12 x 12 square micron TES sensor and 34 x 34 x 9.1 micron gold absorber, and a resolution of 2.30 eV at 6 keV in a pixel with a 35 x 35 micron TES and a 57 x 57 x 9.1 micron gold absorber. This performance has been achieved in pixels that are fabricated directly onto solid substrates, ie. they are not supported by silicon nitride membranes. We present the results from these detectors, the expected performance at high count-rates, and prospects for the use of this technology for future Solar missions.
机译:高光谱分辨率,高节奏,成像X射线光谱学有可能彻底改变对太阳电晕的研究。为此,我们一直在开发基于过渡边缘传感器(TES)的X射线微热量计阵列,用于未来的太阳物理学任务,其中成像和高能分辨率光谱学将使以前不可能进行的太阳日冕的动力学和能量学研究成为可能。这些X射线微热量计的特性与为天体物理学开发的常规微热量计显着不同,因为它们需要适应更高的计数率(300-1000 cps),同时在X射线能带中保持低于4 eV FWHM的高能量分辨率0.2-10 keV。另一个主要区别是像素尺寸(小于75 x 75平方微米)比x射线微热量计的典型尺寸要小,以便提供小于1弧秒的角分辨率。我们使用12 x 12平方微米TES传感器和34 x 34 x 9.1微米金吸收体在6 keV时实现了2.15 eV的能量分辨率,而在35 x x像素中实现了6 keV时的2.30 eV分辨率。 35微米TES和57 x 57 x 9.1微米金吸收器。在直接制造到固态基板上的像素中已经实现了这一性能。它们不受氮化硅膜的支持。我们介绍了这些探测器的结果,在高计数率下的预期性能以及在将来的太阳能任务中使用该技术的前景。

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