Vegetation signature in the observed globally-integrated spectrum of Earth: Modeling the red edge strength using simultaneous cloud data and application for extrasolar planets
arXiv:astro-ph/0604420 · doi:10.1086/507694
Abstract
The vegetation's ``red edge'', an intensity bump in the Earth's spectrum near 700 when sunlight is reflected from greenery, is often suggested as a tool in the search for life in terrestrial-like extrasolar planets. Here, through ground-based observations of the Earth's spectrum, satellite observations of clouds, and an advanced atmospheric radiative transfer code, we determine the temporal evolution of the vegetation signature of Earth. The excellent agreement between models and observations motivated us to probe more deeply into the red edge detectability using real cloud observations at longer time scales. Overall, we find the evolution of the red edge signal in the globally-averaged spectra to be weak, and only attributable to vegetation changes when the real land and cloud distributions for the day are known. However, it becomes prominent under certain Sun-Earth-Moon orbital geometries, which are applicable to the search for life in extrasolar planets. Our results indicate that vegetation detection in Earth-like planets will require a considerable level of instrumental precision and will be a difficult task, but not as difficult as the normally weak earthshine signal might seem to suggest.
13 pages, 9 figures, submitted to ApJ
References in corpus (1)
Cited by in corpus (29)
- How to Characterize Habitable Worlds and Signs of Life
- Alien Maps of an Ocean-Bearing World
- Detecting the Glint of Starlight on the Oceans of Distant Planets
- Spectropolarimetric signatures of Earth-like extrasolar planets
- Detection of Ocean Glint and Ozone Absorption Using LCROSS Earth Observations
- Identifying the rotation rate and the presence of dynamic weather on extrasolar Earth-like planets from photometric observations
- Global Mapping of Earth-like Exoplanets from Scattered Light Curves
- Nonphotosynthetic Pigments as Potential Biosignatures
- Prospects for Detecting Oxygen, Water, and Chlorophyll on an Exo-Earth
- Earthshine observation of vegetation and implication for life detection on other planets - A review of 2001 - 2006 works
- Jupiter as an exoplanet: UV to NIR transmission spectrum reveals hazes, a Na layer and possibly stratospheric H2O-ice clouds
- Variability due to climate and chemistry in observations of oxygenated Earth-analogue exoplanets
- Red-edge position of habitable exoplanets around M-dwarfs
- Possibilities for an Aerial Biosphere in Temperate Sub Neptune-Sized Exoplanet Atmospheres
- Using polarimetry to retrieve the cloud coverage of Earth-like exoplanets
- Expanding the Timeline for Earth's Photosynthetic Red Edge Biosignature
- Colors of an Earth-like exoplanet -- Temporal flux and polarization signals of the Earth
- Polarimetric signature of the oceans as detected by near-infrared Earthshine observations
- Climates of Warm Earth-Like Planets III: Fractional Habitability from a Water Cycle Perspective
- Detectability of Surface Biosignatures for Directly-Imaged Rocky Exoplanets
- High-resolution spectroscopy and spectropolarimetry of the total lunar eclipse January 2019
- Unveiling non-gray surface of cloudy exoplanets: the influence of wavelength-dependent surface albedo and cloud scattering properties on retrieval solutions
- Photosynthetic Fluorescence from Earth-Like Planets around Sun-Like and Cool Stars
- Detecting 3D vegetation structure with the Galileo space probe: Can a distant probe detect vegetation structure on Earth?
- Planet Earth in reflected and polarized light: II. Refining contrast estimates for rocky exoplanets with ELT and HWO
- The Hubble Space Telescope's near-UV and optical transmission spectrum of Earth as an exoplanet
- Distinguishing multicellular life on exoplanets by testing Earth as an exoplanet
- Exoplanet Analog Observations of Earth from Galileo Disk-integrated Photometry
- Detectability Simulations of a NIR Surface Biosignature on Proxima Centauri b with Future Space Observatories