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October 20, 20250 citationsOpen Access

Far-infrared lines hidden in archival deep multi-wavelength surveys: Limits on CII-158μm at z 0. 3-2. 9

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SAShubh AgrawalJAJames E. AguirreRKRyan Keenan

Key Points

  • Crucial limits on the average [CII]-158μm emission reveal lower than expected signal during star formation peak.
  • Upper limits were measured at redshifts of approximately 0.65, 1.3, 2.1, and 2.6 with significances of 1-1.4σ.
  • Methodology involved tomographically stacking a comprehensive galaxy catalog on the deep broadband maps.
  • Results question previous findings, potentially impacting future surveys targeting high-redshift cosmic star formation.

Abstract

Singly-ionized carbon is theorized to be the brightest emission line feature in star-forming galaxies, and hence an excellent tracer of the evolution of cosmic star formation. Archival maps from far-infrared and sub-millimeter surveys potentially contain the redshifted CII-158μm, hidden in the much brighter continuum emission. We present a search for aggregate CII-158μm line emission across the predicted peak of star formation history by tomographically stacking a high-completeness galaxy catalog on broadband deep maps of the COSMOS field and constraining residual excess emission after subtracting the continuum spectral energy distribution (SED). We obtain constraints on the sky-averaged CII-158μm signal from the three Herschel/SPIRE maps: 11. 810. 2, 11. 08. 7, 9. 69. 8, and 9. 26. 6 kJy/sr at redshifts z 0. 65, 1. 3, 2. 1, and 2. 6 respectively, corresponding to 1-1. 4σ significance in each bin. Our 3σ upper limits are in tension with past z2. 6 results from cross-correlating SDSS-BOSS quasars with high-frequency Planck maps, and indicate a much less dramatic evolution (7. 5) of mean CII intensity across the peak of star formation history than collisional excitation models or frameworks calibrated to the tentative PlanckxBOSS measurement. We discuss this tension, particularly in the context of in-development surveys (TIM, EXCLAIM) that will map this CII at high redshift resolution. Having demonstrated stacking in broadband deep surveys as a complementary methodology to next-generation spectrometers for line intensity mapping, our novel methods can be extended to upcoming galaxy surveys such as Euclid, as well as to place upper limits on fainter atomic and molecular lines.

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Cite This Study

Agrawal et al. (2025) studied this question.

synapsesocial.com/papers/68f5fcce8d54a28a75cf1ba5https://doi.org/10.48550/arxiv.2509.24211
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Far-infrared lines hidden in archival deep multi-wavelength surveys: Limits on [CII]-158 μm at2026
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  5. 5Gas conditions of a star-formation selected sample in the first billion years2024