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PMID: 11537523 Published · ppublish English Journal Article

Bolide impacts and the oxidation state of carbon in the Earth's early atmosphere.

Kasting JF

Abstract

A one-dimensional photochemical model was used to examine the effect of bolide impacts on the oxidation state of Earth's primitive atmosphere. The impact rate should have been high prior to 3.8 Ga before present, based on evidence derived from the Moon. Impacts of comets or carbonaceous asteroids should have enhanced the atmospheric CO/CO2 ratio by bringing in CO ice and/or organic carbon that can be oxidized to CO in the impact plume. Ordinary chondritic impactors would contain elemental iron that could have reacted with ambient CO2 to give CO. Nitric oxide (NO) should also have been produced by reaction between ambient CO2 and N2 in the hot impact plumes. High NO concentrations increase the atmospheric CO/CO2 ratio by increasing the rainout rate of oxidized gases. According to the model, atmospheric CO/CO2 ratios of unity or greater are possible during the first several hundred million years of Earth's history, provided that dissolved CO was not rapidly oxidized to bicarbonate in the ocean. Specifically, high atmospheric CO/CO2 ratios are possible if either: (1) the climate was cool (like today's climate), so that hydration of dissolved CO to formate was slow, or (2) the formate formed from CO was efficiently converted into volatile, reduced carbon compounds, such as methane. A high atmospheric CO/CO2 ratio may have helped to facilitate prebiotic synthesis by enhancing the production rates of hydrogen cyanide and formaldehyde. Formaldehyde may have been produced even more efficiently by photochemical reduction of bicarbonate and formate in Fe(++)-rich surface waters.

Keywords
NASA Discipline Exobiology NASA Discipline Number 52-30 NASA Program Exobiology Non-NASA Center
MeSH Terms
Atmosphere Carbon Dioxide/chemistry Carbon Monoxide/chemistry Earth, Planet Formaldehyde/chemical synthesis,chemistry Hydrogen Cyanide/chemical synthesis,chemistry Minor Planets Models, Chemical Nitric Oxide/chemistry Oceans and Seas Oxidation-Reduction Paleontology Photochemistry Solar System Temperature
Chemicals
Carbon Dioxide Formaldehyde Hydrogen Cyanide Nitric Oxide Carbon Monoxide
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
Kasting J F
Department of Geosciences, The Pennsylvania State University, University Park 16802.
Investigators
1 investigators, click to expand
Kasting J F
Penn St U, U Park, Dept Geosciences
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23 references, click to expand
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Article Info
Journal
Origins of life and evolution of the biosphere : the journal of the International Society for the Study of the Origin of Life
Abbr.
Orig Life Evol Biosph
ISSN
0169-6149
Published
1992-00-00
Pages
199-231
Language
English
Region
Netherlands
NLM ID
8610391
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