A detailed model is presented of methane photochemistry in the primitive terrestrial atmosphere along with speculation about its interpretation. Steady-state CH4 mixing ratios of 10-6-10-4 could have been maintained by a methane source of about 1011 cm-2 s-1, which is comparable to the modern biogenic methane production rate. In the absence of a source, methane would have disappeared in 4 years, being either oxidized, or polymerized into more complex hydrocarbons. The source strength needed to maintain a steady CH4 mixing ratio and the degree to which methane could have polymerized to form higher hydrocarbons depend upon the amount of CO2 present in the early atmosphere. The dependence on H2 is much weaker. Infrared absorption by methane, a...
The low O2 content of the Archean atmosphere implies that methane should have been present at levels...
Atmospheric methane, CO and the gaseous OH radical are interdependent: If CH4, CO or OH is perturbed...
Methane (CH4) is a powerful greenhouse gas and plays a key part in global atmospheric chemistry. Nat...
The role photochemical reactions in the early Earth's atmosphere played in the prebiotic synthesis o...
A simple geochemical box model for the global cycle of methane (CH4) has been developed and applied ...
The simplest carbon compounds, present in the terrestrial and planetary atmospheres, exhibit a wide ...
The history of the Earth has been marked by major ecological transitions, driven by metabolic innova...
Atmospheric methane (CH4) varied with climate during the Quaternary, rising from a concentration of ...
Methane is the most abundant organic chemical in Earth's atmosphere, and its concentration is increa...
Aerosols in planetary atmospheres play a critical role in radiative transfer and thus also in determ...
Methane is a radiatively and chemically active trace gas of the earth's atmosphere. Its atmospheric ...
Methane is a radiatively and chemically active trace gas of the earth\u27s atmosphere. Its atmospher...
International audienceMethane (CH$_4$) is a powerful greenhouse gas and plays a key part in global a...
International audienceTo examine how prebiotic chemical evolution took place on Earth prior to the e...
The low O2 content of the Archean atmosphere implies that methane should have been present at levels...
Atmospheric methane, CO and the gaseous OH radical are interdependent: If CH4, CO or OH is perturbed...
Methane (CH4) is a powerful greenhouse gas and plays a key part in global atmospheric chemistry. Nat...
The role photochemical reactions in the early Earth's atmosphere played in the prebiotic synthesis o...
A simple geochemical box model for the global cycle of methane (CH4) has been developed and applied ...
The simplest carbon compounds, present in the terrestrial and planetary atmospheres, exhibit a wide ...
The history of the Earth has been marked by major ecological transitions, driven by metabolic innova...
Atmospheric methane (CH4) varied with climate during the Quaternary, rising from a concentration of ...
Methane is the most abundant organic chemical in Earth's atmosphere, and its concentration is increa...
Aerosols in planetary atmospheres play a critical role in radiative transfer and thus also in determ...
Methane is a radiatively and chemically active trace gas of the earth's atmosphere. Its atmospheric ...
Methane is a radiatively and chemically active trace gas of the earth\u27s atmosphere. Its atmospher...
International audienceMethane (CH$_4$) is a powerful greenhouse gas and plays a key part in global a...
International audienceTo examine how prebiotic chemical evolution took place on Earth prior to the e...
The low O2 content of the Archean atmosphere implies that methane should have been present at levels...
Atmospheric methane, CO and the gaseous OH radical are interdependent: If CH4, CO or OH is perturbed...
Methane (CH4) is a powerful greenhouse gas and plays a key part in global atmospheric chemistry. Nat...