Nitrogen-enhanced greenhouse warming on early Earth (original) (raw)
References
Sagan, C. & Mullen, G. Earth and Mars: Evolution of atmospheres and surface temperatures. Science177, 52–56 (1972). Google Scholar
Kuhn, W. R. & Atreya, S. K. Ammonia photolysis and the greenhouse effect in the primordial atmosphere of the Earth. Icarus37, 207–213 (1979). Google Scholar
Owen, T., Cess, R. D. & Ramanathan, V. Enhanced CO2 greenhouse to compensate for reduced solar luminosity on early Earth. Nature277, 640–642 (1979). Google Scholar
Sheldon, N. D. Precambrian paleosols and atmospheric CO2 levels. Precambr. Res.147, 148–155 (2006). Google Scholar
Pavlov, A. A., Kasting, J. F., Brown, L. L., Rages, K. A. & Freedman, R. Greenhouse warming by CH4 in the atmosphere of early Earth. J. Geophys. Res.105, 11981–11990 (2000). Google Scholar
Haqq-Misra, J. D., Domagal-Goldman, S. D., Kasting, P. J. & Kasting, J. F. A revised, hazy methane greenhouse for the Archean Earth. Astrobiology8, 1127–1137 (2008). Google Scholar
Buick, R. Did the Proterozoic ‘Canfield Ocean’ cause a laughing gas greenhouse? Geobiology5, 97–100 (2007). Google Scholar
Kasting, J. F., Whitmere, D. P. & Reynolds, R. T. Habitable zones around main sequence stars. Icarus101, 108–128 (1993). Google Scholar
Ramanathan, V. & Coakley, J. A. Jr Climate modeling through radiative-convective models. Rev. Geophys. Space Phys.16, 465–489 (1978). Google Scholar
Holland, H. D. The Chemistry of the Atmosphere and Oceans (Wiley, 1978). Google Scholar
Boyd, S. R. Nitrogen in future biosphere studies. Chem. Geol.176, 1–30 (2001). Google Scholar
Holloway, J. M. & Dahlgren, R. A. Nitrogen in rock: Occurrences and biogeochemical implications. Glob. Biogeochem. Cycles16, 1118 (2002). Google Scholar
Wlotzka, F. in Handbook of Geochemistry II (ed. Wedepohl, K. H.) 7B1–7O3 (Springer, 1972). Google Scholar
Wedepohl, K. H. The composition of the continental crust. Geochim. Cosmochim. Acta59, 1217–1232 (1995). Google Scholar
Veizer, J. & Mackenzie, F. T. in Treatise on Geochemistry Vol. 7 (eds Holland, H. D. & Turekian, K. K.) 369–407 (Elsevier, 2003). Google Scholar
Amiotte Suchet, P., Probst, J.-L. & Ludwig, W. Worldwide distribution of continental rock lithology: Implications for the atmospheric/soil CO2 uptake by continental weathering and alkalinity river transport to the oceans. Glob. Biogeochem. Cycles17, 1038 (2003). Google Scholar
Li, L. & Bebout, G. E. Carbon and nitrogen geochemistry of sediments in the Central American convergent margin: Insights regarding subduction input fluxes, diagenesis, and paleoproductivity. J. Geophys. Res.110, B11202 (2005). Google Scholar
Sullivan, P. J., Sposito, G., Strathouse, S. M. & Hansen, C. L. Geologic nitrogen and the occurrence of high nitrate soils in the western San Joaquin Valley, California. Hilgardia47, 15–49 (1979). Google Scholar
Hall, A. Ammonium in granites and its petrogenetic significance. Earth. Sci. Rev.45, 145–165 (1999). Google Scholar
Taylor, S. R. & McLennan, S. M. The geochemical evolution of the continental crust. Rev. Geophys.33, 241–265 (1995). Google Scholar
Rudnick, R. L. & Gao, S. in Treatise on Geochemistry Vol. 3 (eds Holland, H. D. & Turekian, K. K.) 1–64 (Elsevier, 2003). Google Scholar
Busigny, V., Cartigny, P., Philippot, P., Ader, M. & Javoy, M. Massive recycling of nitrogen and other fluid-mobile elements (K, Rb, Cs, H) in a cold slab environment: Evidence from HP to UHP oceanic metasediments of the Schistes Lustrs nappe (western Alps, Europe). Earth Planet. Sci. Lett.215, 27–42 (2003). Google Scholar
Mingram, B. & Bräuer, K. Ammonium concentration and nitrogen isotope composition in metasedimentary rocks from different tectonometamorphic units of the European Variscan Belt. Geochim. Cosmochim. Acta65, 273–287 (2001). Google Scholar
Bebout, G. E., Ryan, J. G., Leeman, W. P. & Bebout, A. E. Fractionation of trace elements by subduction-zone metamorphism—effect of convergent-margin thermal evolution. Earth Planet. Sci. Lett.171, 63–81 (1999). Google Scholar
Li, L., Bebout, G. E. & Idleman, B. D. Nitrogen concentration and _δ_15N of altered oceanic crust obtained on ODP Legs 129 and 185: Insights into alteration-related nitrogen enrichment and the nitrogen subduction budget. Geochim. Cosmochim. Acta71, 2344–2360 (2007). Google Scholar
Hawkesworth, C. J. & Kemp, A. I. S. Evolution of the continental crust. Nature443, 811–817 (2006). Google Scholar
Tolstikhin, I. N. & Marty, B. The evolution of terrestrial volatiles: A view from helium, neon, argon and nitrogen isotope modelling. Chem. Geol.147, 27–52 (1998). Google Scholar
Marty, B. & Dauphas, N. The nitrogen record of crust–mantle interaction and mantle convection from Archean to Present. Earth Planet. Sci. Lett.206, 397–410 (2003). Google Scholar
Tappert, R. et al. Diamonds from Jagersfontein (South Africa): Messengers from the sublithospheric mantle. Contrib. Mineral. Petrol.150, 505–522 (2005). Google Scholar
Cartigny, P., Harris, J. W. & Javoy, M. Diamond genesis, mantle fractionations and mantle nitrogen content: A study of _δ_13C–N concentrations in diamonds. Earth Planet. Sci. Lett.185, 85–98 (2001). Google Scholar
Beaumont, V. & Robert, F. Nitrogen isotope ratios of kerogens in Precambrian cherts: A record of the evolution of atmosphere chemistry? Precambr. Res.96, 63–82 (1999). Google Scholar
Philippot, P., Busigny, V., Scambelluri, M. & Cartigny, P. Oxygen and nitrogen isotopes as tracers of fluid activities in serpentinites and metasediments during subduction. Mineral. Petrol.91, 11–24 (2007). Google Scholar
Hilton, D. R., Fischer, T. P. & Marry, B. Noble gases and volatile recycling at subduction zones. Rev. Mineral. Geochem.47, 319–370 (2002). Google Scholar
Canfield, D. E. A new model for Proterozoic ocean chemistry. Nature396, 450–453 (1998). Google Scholar
Konovalov, S. K., Murray, J. W., Luther, G. W. & Tebo, B. M. Processes controlling the redox budget for the oxic/anoxic water column of the Black Sea. Deep-Sea Res. II53, 1817–1841 (2006). Google Scholar
De Ronde, C. E. J., Channer, D. M. deR., Faure, C. J., Bray, K. & Spooner, E. T. C. Fluid chemistry of Archean seafloor hydrothermal vents: Implications for the composition of circa 3.2 Ga seawater. Geochim. Cosmochim. Acta61, 4025–4042 (1997). Google Scholar
Goldblatt, C., Lenton, T. M. & Watson, A. J. Bistability of atmospheric oxygen and the Great Oxidation. Nature443, 683–686 (2006). Google Scholar
Manabe, S. & Wetherald, R. D. Thermal equilibrium of the atmosphere with a given distribution of relative humidity. J. Atmos. Sci.24, 241–259 (1967). Google Scholar
Edwards, J. M. & Slingo, A. Studies with a flexible new radiation code. I: Choosing a configuration for a large scale model. Q. J. R. Meteorol. Soc.122, 689–719 (1996). Google Scholar
Kasting, J. F., Pollack, J. B. & Crisp, D. Effects of high CO2 levels on surface temperature and atmospheric oxidation-state of the early Earth. J. Atmos. Chem.1, 403–428 (1984). Google Scholar
Jain, A. K., Briegleb, B. P., Minschwaner, K. & Wuebbles, D. J. Radiative forcings and global warming potentials of 39 greenhouse gases. J. Geophys. Res.105, 20773–20790 (2000). Google Scholar
Goldblatt, C. Bistability of Atmospheric Oxygen, the Great Oxidation and Climate. PhD thesis, Univ. East Anglia (2008).
Goldblatt, C., Lenton, T. M. & Watson, A. J. An evaluation of the longwave radiative transfer code used in the Met Office Unified Model. Q. J. R. Meteorol. Soc.135, 619–633 (2009). Google Scholar
Clough, S. A. et al. Atmospheric radiative transfer modeling: A summary of the AER codes. J. Quant. Spectrosc. Ra.91, 233–244 (2005). Google Scholar
Hyde, W. T., Crowley, T. J., Baum, S. K. & Peltier, W. R. Neoproterozoic ‘snowball Earth’ simulations with a coupled climate/ice-sheet model. Nature405, 425–429 (2000). Google Scholar
Bahcall, J. N., Pinsonneault, M. H. & Basu, S. Solar models: Current epoch and time dependences, neutrinos, and helioseismological properties. Astrophys. J.555, 990–1012 (2001). Google Scholar
Sbordone, L., Bonifacio, P., Castelli, F. & Kurucz, R. L. ATLAS and SYNTHE under Linux. Mem. Soc. Astron. Ital. Supp.5, 93 (2004). Google Scholar
Castelli, F. & Kurucz, R. L. in Modelling of Stellar Atmospheres, IAU Symposium Vol. 210 (eds Piskunov, N., Weiss, W. W. & Gray, D. F.) 20P (Astronomical Society of the Pacific, 2003). Google Scholar
Arevalo, Ricardo Jr, McDonough, W. F. & Luong, M. The K/U ratio of the silicate Earth: Insights into mantle composition, structure and thermal evolution. Earth Planet. Sci. Lett.278, 361–269 (2009). Google Scholar
Adler, J. F. & Williams, Q. A high-pressure X-ray diffraction study of iron nitrides: Implications for Earth’s core. J. Geophys. Res.110, B01203 (2005). Google Scholar