论文标题

Ilocater光谱仪的最终设计:用于衍射有限EPRV仪器的优化体系结构

The final design of the iLocater spectrograph: An optimized architecture for diffraction-limited EPRV instruments

论文作者

Crass, Jonathan, Aikens, David, Mason, Joaquin, King, David, Crepp, Justin R., Bechter, Andrew, Bechter, Eric, Farsad, Mahsa, Schwab, Christian, VanSickle, Michael

论文摘要

Ilocater是一种近红外的,极为精确的径向速度(EPRV),用于双直径的大型双眼望远镜(LBT)。该仪器将对绕着低质量恒星的地球状行星进行精确径向速度研究。 iLocater在衍射限制的状态下运行,使用自适应光学器件将星光直接注入单模纤维中,这些光纤纤维纤维纤维纤维纤维纤维纤维的分辨率(r = 190,500个中位数),低温,衍射限制光谱仪。为了最大程度地提高性能,光谱仪为EPRV仪器使用了新的设计策略,将其本质上稳定的材料与精确的光学制造结合在一起。这种新颖的组合将使太阳街区的外生星和天体物理学研究具有独特的EPRV功能。 我们介绍了光谱仪系统的最终光学和机械设计。确保所构建的光谱仪实现其设计的光谱分辨率和衍射有限的性能,需要仔细控制端到端系统波前误差(WFE)预算。我们讨论为实现这一目标所做的努力,包括最大程度地减少光学设计中的剩余WFE,评估衍射光栅性能,优化材料选择以及需要精确的光学设计和制造。我们的目标是在完整的光谱格式上提供衍射有限的性能,结合EPRV科学的内在热稳定性要求,驱动了硅光学和Invar光学力学的选择。使用精度(SUB-MK)热控制进一步优化了系统性能。这组设计功能将使Ilocater在近红外实现次数径向速度的精度,并作为EPRV科学的首次优化衍射限量光谱仪。

iLocater is a near-infrared, extremely precise radial velocity (EPRV) spectrograph under construction for the dual 8.4 m diameter Large Binocular Telescope (LBT). The instrument will undertake precision radial velocity studies of Earth-like planets orbiting low-mass stars. Operating in the diffraction-limited regime, iLocater uses adaptive optics to efficiently inject starlight directly into single-mode fibers that illuminate a high spectral resolution (R=190,500 median), cryogenic, diffraction-limited spectrograph. To maximize performance, the spectrograph uses a new design strategy for EPRV instruments, combining intrinsically stable materials for its optomechanical fabrication with precision optical fabrication. This novel combination will enable unique EPRV capabilities for exoplanet and astrophysics studies of the solar neighborhood. We present the final optical and mechanical designs of the spectrograph system. Ensuring the as-built spectrograph achieves its designed spectral resolution and diffraction-limited performance has required careful control of the end-to-end system wavefront error (WFE) budget. We discuss the efforts undertaken to achieve this goal including minimizing residual WFE in the optical design, assessing diffraction grating WFE performance, optimizing material choices, and requiring precision optical design and fabrication. Our goal is to deliver diffraction-limited performance across the full spectral format, which, combined with intrinsic thermal stability requirements for EPRV science, has driven the selection of silicon optics and Invar optomechanics. The system performance is further optimized using precision (sub-mK) thermal control. This set of design features will allow iLocater to achieve sub-m/s radial velocity precision in the near-infrared, and to serve as the first optimized diffraction-limited spectrograph for EPRV science.

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