Simulated performance of energy-resolving detectors towards exoplanet imaging with the Habitable Worlds Observatory

Sarah Steiger, Laurent Pueyo, Emiel H. Por, Pin Chen, Rémi Soummer, Raphaël Pourcelot, Iva Laginja, Vanessa P. Bailey
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Abstract

One of the primary science goals of the Habitable Worlds Observatory (HWO) as defined by the Astro2020 decadal survey is the imaging of the first Earth-like planet around a Sun-like star. A key technology gap towards reaching this goal are the development of ultra-low-noise photon counting detectors capable of measuring the incredibly low count rates coming from these planets which are at contrasts of $\sim 1 \times 10^{-10}$. Superconducting energy-resolving detectors (ERDs) are a promising technology for this purpose as, despite their technological challenges, needing to be cooled below their superconducting transition temperature ($< 1\mathrm{K}$), they have essentially zero read noise, dark current, or clock-induced charge, and can get the wavelength of each incident photon without the use of additional throughput-reducing filters or gratings that spread light over many pixels. The use of these detectors on HWO will not only impact the science of the mission by decreasing the required exposure times for exo-Earth detection and characterization, but also in a wavefront sensing and control context when used for starlight suppression to generate a dark zone. We show simulated results using both an EMCCD and an ERD to ``dig a dark zone'' demonstrating that ERDs can achieve the same final contrast as an EMCCD in about half of the total time. We also perform a simple case study using an exposure time calculator tool called the Error Budget Software (EBS) to determine the required integration times to detect water for HWO targets of interest using both EMCCDs and ERDs. This shows that once a dark zone is achieved, using an ERD can decrease these exposure times by factors of 1.5--2 depending on the specific host star properties.
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宜居世界天文台系外行星成像能量分辨探测器的模拟性能
天体2020十年期调查所确定的宜居世界天文台(HWO)的主要科学目标之一是对围绕类太阳恒星的第一颗类地行星进行成像。实现这一目标的一个关键技术差距是开发超低噪声光子计数探测器,能够测量来自这些行星的难以置信的低计数率,其对比度为10^{-10}$的1 \次方。超导能量分解探测器(ERD)是一种很有前途的技术,因为尽管其技术难度很高,需要冷却到超导转变温度以下($< 1\mathrm{K}$),但它们的读噪、暗电流或时钟诱导电荷基本上为零,而且可以获得每个入射光子的波长,而无需使用额外的降低吞吐量的滤光片或光栅来将光扩散到许多像素上。在 HWO 上使用这些探测器不仅可以减少外地球探测和特征描述所需的曝光时间,从而对任务的科学性产生影响,而且当用于星光抑制以产生暗区时,还可以在前沿传感和控制方面产生影响。我们展示了使用EMCCD和ERD "挖掘暗区 "的模拟结果,表明ERD可以在大约一半的总时间内达到与EMCCD相同的最终对比度。我们还使用一种名为误差预算软件(EBS)的曝光时间计算工具进行了一项简单的案例研究,以确定使用 EMCCD 和 ERD 对感兴趣的 HWO 目标进行水探测所需的积分时间。结果表明,一旦达到暗区,使用ERD可以将曝光时间缩短1.5-2倍,具体取决于具体的主星特性。
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