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February 27, 2026The Astrophysical Journal1 citationsOpen Access

Looking at Infrared Background Radiation Anisotropies with Spitzer. II. Small Scale Anisotropies and their Implications for New and Upcoming Space Surveys

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AKAidan KaminskyAKA. KashlinskyRARichard G. Arendt

Key Points

  • The aim is to analyze small-scale anisotropies in the cosmic infrared background and their implications for upcoming space surveys.
  • Used Spitzer datasets to assess source-subtracted cosmic infrared background fluctuations.
  • Reconstructed near-IR CIB anisotropies based on known galaxy populations using an advanced halo model.
  • Compared modeled CIB fluctuations against observed signals to estimate contributions from known and new galaxies.
  • Observed small-scale CIB signal primarily originates from known galaxies down to statistical uncertainties of less than 10%.
  • Identified a conflict with intra-halo light models, suggesting new sources are located at high redshifts.
  • Roman surveys offer the best capability for measuring source-subtracted CIB compared to Euclid and SPHEREx missions.

Abstract

Abstract Spitzer-based source-subtracted cosmic infrared background (CIB) fluctuations at arcminute-to-degree scales indicate the presence of new populations, whereas subarcminute power arises from known z ≲ 6 galaxies. We reconstruct the evolution of the near-IR CIB anisotropies on subarcminute scales by known galaxy populations. This method is based on, and significantly advanced over, the empirical reconstruction by Helgason et al. which is combined with the halo model connecting galaxies to their host dark matter halos. The modeled CIB fluctuations from known galaxies produce the majority of the observed small-scale signal down to statistical uncertainties of <10% and we constrain the evolution of the halo mass regime hosting such galaxies. Thus, the large-scale CIB fluctuations from new populations are produced by sources with negligible small-scale power. This appears to conflict with the presented intra-halo light models, but is accounted for if the new sources are at high z . Our analysis spanning several Spitzer datasets allows us to narrow the estimated contributions of remaining known galaxies to the CIB anisotropies to be probed potentially from surveys by new and upcoming space missions such as Euclid, SPHEREx, and Roman. Of these, the Roman surveys have the best prospects for measuring the source-subtracted CIB and probing the nature of the underlying new populations at λ < 2 μ m, followed by Euclid’s surveys, while for SPHEREx the source-subtracted CIB signal from them appears significantly overwhelmed by the CIB from remaining known galaxies.

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Cite This Study

Kaminsky et al. (2026) studied this question.

synapsesocial.com/papers/69a1344fed1d949a99abe230https://doi.org/10.3847/1538-4357/ae371d
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