Shedding Light on Large Space-Based Telescopes: Modeling Stray Light due to Primary Mirror Damage from Micrometeoroid Impacts

Fuente: arXiv
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Main Authors: Gialluca, Megan T., Arenberg, Jonathan W., Stark, Chris, Shepherd, Blake, Meadows, Victoria S., Roberge, Aki, Robinson, Tyler D., Podgurski, Robert
Format: Preprint
Published: 2025
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author Gialluca, Megan T.
Arenberg, Jonathan W.
Stark, Chris
Shepherd, Blake
Meadows, Victoria S.
Roberge, Aki
Robinson, Tyler D.
Podgurski, Robert
author_facet Gialluca, Megan T.
Arenberg, Jonathan W.
Stark, Chris
Shepherd, Blake
Meadows, Victoria S.
Roberge, Aki
Robinson, Tyler D.
Podgurski, Robert
contents A large space-based telescope aimed at detecting and characterizing the atmospheres of Earth-like planets orbiting Sun-like stars will require unprecedented contrast and stability. However, damage to the primary mirror due to micrometeoroid impacts will provide a stochastic, time-dependent source of stray light in the coronagraph's field of view that could significantly lengthen exposure times and reduce the expected science yield. To better quantify the impact of stray light and inform the Habitable Worlds Observatory mission design process, we present estimates of stray light in different micrometeoroid damage scenarios for a broad range of targets, and use that to find the expected decrease in science yield (i.e., the expected number of detected exoEarth candidates). We find that stray light due to micrometeoroid damage may significantly reduce yield, by 30% -- 60% in some cases, but significant uncertainties remain due to the unknown maximum expected impactor energy, and the relationship between impact energy and expected crater size. Micrometeoroid damage therefore needs further exploration, as it has the potential to reduce scientific yield, and in turn drive the development of mitigation strategies, selection of telescope designs, and selection of observing priorities in the future.
format Preprint
id arxiv_https___arxiv_org_abs_2512_10915
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Shedding Light on Large Space-Based Telescopes: Modeling Stray Light due to Primary Mirror Damage from Micrometeoroid Impacts
Gialluca, Megan T.
Arenberg, Jonathan W.
Stark, Chris
Shepherd, Blake
Meadows, Victoria S.
Roberge, Aki
Robinson, Tyler D.
Podgurski, Robert
Earth and Planetary Astrophysics
Instrumentation and Methods for Astrophysics
A large space-based telescope aimed at detecting and characterizing the atmospheres of Earth-like planets orbiting Sun-like stars will require unprecedented contrast and stability. However, damage to the primary mirror due to micrometeoroid impacts will provide a stochastic, time-dependent source of stray light in the coronagraph's field of view that could significantly lengthen exposure times and reduce the expected science yield. To better quantify the impact of stray light and inform the Habitable Worlds Observatory mission design process, we present estimates of stray light in different micrometeoroid damage scenarios for a broad range of targets, and use that to find the expected decrease in science yield (i.e., the expected number of detected exoEarth candidates). We find that stray light due to micrometeoroid damage may significantly reduce yield, by 30% -- 60% in some cases, but significant uncertainties remain due to the unknown maximum expected impactor energy, and the relationship between impact energy and expected crater size. Micrometeoroid damage therefore needs further exploration, as it has the potential to reduce scientific yield, and in turn drive the development of mitigation strategies, selection of telescope designs, and selection of observing priorities in the future.
title Shedding Light on Large Space-Based Telescopes: Modeling Stray Light due to Primary Mirror Damage from Micrometeoroid Impacts
topic Earth and Planetary Astrophysics
Instrumentation and Methods for Astrophysics
url https://arxiv.org/abs/2512.10915