Wavelength Requirements for Life Detection via Reflected Light Spectroscopy of Rocky Exoplanets

Fuente: arXiv
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Main Authors: Krissansen-Totton, Joshua, Ulses, Anna Grace, Frissell, Maxwell, Gilbert-Janizek, Samantha, Young, Amber, Lustig-Yaeger, Jacob, Robinson, Tyler, Olson, Stephanie, Alei, Eleonora, Arney, Giada, Hagee, Celeste, Harman, Chester, Hinkel, Natalie, Lafleche, Emilie, Latouf, Natasha, Mandell, Avi, Moussa, Mark M., Parenteau, Niki, Ranjan, Sukrit, Russell, Blair, Schwieterman, Edward W., Sousa-Silva, Clara, Tokadjian, Armen, Wogan, Nicholas
Format: Preprint
Published: 2025
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author Krissansen-Totton, Joshua
Ulses, Anna Grace
Frissell, Maxwell
Gilbert-Janizek, Samantha
Young, Amber
Lustig-Yaeger, Jacob
Robinson, Tyler
Olson, Stephanie
Alei, Eleonora
Arney, Giada
Hagee, Celeste
Harman, Chester
Hinkel, Natalie
Lafleche, Emilie
Latouf, Natasha
Mandell, Avi
Moussa, Mark M.
Parenteau, Niki
Ranjan, Sukrit
Russell, Blair
Schwieterman, Edward W.
Sousa-Silva, Clara
Tokadjian, Armen
Wogan, Nicholas
author_facet Krissansen-Totton, Joshua
Ulses, Anna Grace
Frissell, Maxwell
Gilbert-Janizek, Samantha
Young, Amber
Lustig-Yaeger, Jacob
Robinson, Tyler
Olson, Stephanie
Alei, Eleonora
Arney, Giada
Hagee, Celeste
Harman, Chester
Hinkel, Natalie
Lafleche, Emilie
Latouf, Natasha
Mandell, Avi
Moussa, Mark M.
Parenteau, Niki
Ranjan, Sukrit
Russell, Blair
Schwieterman, Edward W.
Sousa-Silva, Clara
Tokadjian, Armen
Wogan, Nicholas
contents Searching for signs of life is a primary goal of the Habitable Worlds Observatory (HWO). However, merely detecting oxygen, methane, or other widely discussed biosignatures is insufficient evidence for a biosphere. In parallel with biosignature detection, exoplanet life detection additionally requires characterization of the broader physicochemical context to evaluate planetary habitability and the plausibility that life could produce a particular biosignature in a given environment. Life detection further requires that we can confidently rule out photochemical or geological phenomena that can mimic life (i.e. "false positives"). Evaluating false positive scenarios may require different observatory specifications than biosignature detection surveys. Here, we explore the coronagraph requirements for assessing habitability and ruling out known false positive (and false negative) scenarios for oxygen and methane, the two most widely discussed biosignatures for Earth-like exoplanets. We find that broad wavelength coverage ranging from the near UV (0.26 $μ$m) and extending into the near infrared (1.7 $μ$m), is necessary for contextualizing biosignatures with HWO. The short wavelength cutoff is driven by the need to identify Proterozoic-like biospheres via O$_3$, whereas the long wavelength cutoff is driven by the need to contextualize O$_2$ and CH$_4$ biosignatures via constraints on C-bearing atmospheric species. The ability to obtain spectra with signal-to-noise ratios of 20-40 across this 0.26-1.7 $μ$m range (assuming R=7 UV, R=140 VIS, and R=70 NIR) is also required. Without sufficiently broad wavelength coverage, we risk being unprepared to interpret biosignature detections and may ultimately be ill-equipped to confirm the detection of an Earth-like biosphere, which is a driving motivation of HWO..
format Preprint
id arxiv_https___arxiv_org_abs_2507_14771
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Wavelength Requirements for Life Detection via Reflected Light Spectroscopy of Rocky Exoplanets
Krissansen-Totton, Joshua
Ulses, Anna Grace
Frissell, Maxwell
Gilbert-Janizek, Samantha
Young, Amber
Lustig-Yaeger, Jacob
Robinson, Tyler
Olson, Stephanie
Alei, Eleonora
Arney, Giada
Hagee, Celeste
Harman, Chester
Hinkel, Natalie
Lafleche, Emilie
Latouf, Natasha
Mandell, Avi
Moussa, Mark M.
Parenteau, Niki
Ranjan, Sukrit
Russell, Blair
Schwieterman, Edward W.
Sousa-Silva, Clara
Tokadjian, Armen
Wogan, Nicholas
Earth and Planetary Astrophysics
Searching for signs of life is a primary goal of the Habitable Worlds Observatory (HWO). However, merely detecting oxygen, methane, or other widely discussed biosignatures is insufficient evidence for a biosphere. In parallel with biosignature detection, exoplanet life detection additionally requires characterization of the broader physicochemical context to evaluate planetary habitability and the plausibility that life could produce a particular biosignature in a given environment. Life detection further requires that we can confidently rule out photochemical or geological phenomena that can mimic life (i.e. "false positives"). Evaluating false positive scenarios may require different observatory specifications than biosignature detection surveys. Here, we explore the coronagraph requirements for assessing habitability and ruling out known false positive (and false negative) scenarios for oxygen and methane, the two most widely discussed biosignatures for Earth-like exoplanets. We find that broad wavelength coverage ranging from the near UV (0.26 $μ$m) and extending into the near infrared (1.7 $μ$m), is necessary for contextualizing biosignatures with HWO. The short wavelength cutoff is driven by the need to identify Proterozoic-like biospheres via O$_3$, whereas the long wavelength cutoff is driven by the need to contextualize O$_2$ and CH$_4$ biosignatures via constraints on C-bearing atmospheric species. The ability to obtain spectra with signal-to-noise ratios of 20-40 across this 0.26-1.7 $μ$m range (assuming R=7 UV, R=140 VIS, and R=70 NIR) is also required. Without sufficiently broad wavelength coverage, we risk being unprepared to interpret biosignature detections and may ultimately be ill-equipped to confirm the detection of an Earth-like biosphere, which is a driving motivation of HWO..
title Wavelength Requirements for Life Detection via Reflected Light Spectroscopy of Rocky Exoplanets
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2507.14771