HR: 11:35h
AN: SA52A-06 [Abstracts]
TI: On the Red Edge an Optical Biomarker for Detecting Extrateresstrial Plants
AU: * Ford, E B
EM: eford@berkeley.edu
AF: UC Berkeley, Astronomy Deptartment
601 Campbell Hall
University of California in Berkeley, Berkeley, CA 94720-3411
United States
AU: Seager, S
EM: seager@dtm.ciw.edu
AF: Carnegie Institution of Washington, Department of Terrestrial Magnetism
5241 Broad Branch Road, NW, Washington, DC 20015
United States
AU: Turner, E L
EM: elt@astro.princeton.edu
AF: Princeton University, Department of Astrophysical Sciences
Peyton Hall - Ivy Lane, Princeton, NJ 08544-1001
United States
AB:
Earth's deciduous plants have a sharp order-of-magnitude increase in
leaf reflectance between approximately 700 and 750 nm wavelength. This
strong reflectance of Earth's vegetation suggests that surface
biosignatures with sharp spectral features might be detectable in the
spectrum of scattered light from a spatially unresolved extrasolar
terrestrial planet. We assess the potential of Earth's
step-function-like spectroscopic feature, referred to as the ``red edge,''
as a tool for astrobiology. First, we review the basic characteristics and physical origin of the red edge. Then, we
discuss the challenges involved in detecting the red edge in Earthshine (i.e., a spatially integrated scattered light
spectrum of the Earth), as evidenced by recent attempts to detect the red edge using spectroscopic observations of the dark
side of the moon (which is illuminated by Eartshine). We present Earthshine observations from Apache Point Observatory (New
Mexico) to emphasize that time variability is key to detecting weak surface biosignatures such as the vegetation red edge.
We briefly discuss the evolutionary advantages of vegetation's red edge reflectance, and speculate that while
extraterrestrial ``light-harvesting
organisms'' have no compelling reason to display the exact same red edge
feature as terrestrial vegetation, they might have similar spectroscopic
features at different wavelengths than terrestrial vegetation. This
implies that future terrestrial-planet characterizing space missions
should obtain data that allow time-varying, sharp spectral features at
unknown wavelengths to be identified. We caution that some mineral
reflectance edges are similar in slope and strength to vegetation's red
edge (albeit at different wavelengths). Due to the small amplitude of
the terrestrial red edge, the temporal variability of atmospheric water
vapor, and the potential for similar mineralogical features, we conclude
that great care must be taken in the interpretation of any reflectance edges observed in the spectra of extrasolar planets.
DE: 0406 Astrobiology and extraterrestrial materials
DE: 0424 Biosignatures and proxies
DE: 5200 PLANETARY SCIENCES: ASTROBIOLOGY
DE: 5464 Remote sensing
SC: SPA-Aeronomy [SA]
MN: Fall Meeting 2005