Photocatalytic decomposition of carboxylated molecules on light-exposed martian regolith and its relation to methane production on Mars.
暂无分享,去创建一个
[1] C. McKay,et al. Survival of endospores of Bacillus subtilis on spacecraft surfaces under simulated martian environments: implications for the forward contamination of Mars. , 2003, Icarus.
[2] C. Oze,et al. Have olivine, will gas: Serpentinization and the abiogenic production of methane on Mars , 2005 .
[3] H. Yoneyama,et al. Photochemical properties of iron oxide incorporated in clay interlayers , 1989 .
[4] Manish R. Patel,et al. Solar UV Irradiation Conditions on the Surface of Mars¶ , 2003, Photochemistry and photobiology.
[5] J. Oró,et al. The photolytic degradation and oxidation of organic compounds under simulated Martian conditions , 1979, Journal of Molecular Evolution.
[6] Farid Salama,et al. Carbon in the universe. , 1998, Science.
[7] R. Morris,et al. Two earth years of Mössbauer studies of the surface of Mars with MIMOS II , 2006 .
[8] William M. Farrell,et al. Martian dust storms as a possible sink of atmospheric methane , 2006 .
[9] F. Nimmo,et al. Formation of methane on Mars by fluid‐rock interaction in the crust , 2005 .
[10] V. Chevrier,et al. Methane clathrate hydrates as a potential source for martian atmospheric methane , 2007 .
[11] A. Bar-Nun,et al. Methane on Mars: A product of H2O photolysis in the presence of CO , 2006 .
[12] Franck Lefèvre,et al. Observed variations of methane on Mars unexplained by known atmospheric chemistry and physics , 2009, Nature.
[13] H Y McSween,et al. The chemical composition of Martian soil and rocks returned by the mobile alpha proton X-ray spectrometer: preliminary results from the X-ray mode. , 1997, Science.
[14] K. Pang,et al. Photocatalytic oxidation of organic compounds on Mars , 1978, Nature.
[15] R E Arvidson,et al. Initial Results from the Mini-TES Experiment in Gusev Crater from the Spirit Rover , 2004, Science.
[16] K. Biemann,et al. The implications and limitations of the findings of the Viking organic analysis experiment , 1979, Journal of Molecular Evolution.
[17] L. N. Matveeva,et al. The missing organic molecules on Mars. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[18] Tobias Owen,et al. Detection of methane in the martian atmosphere: evidence for life? , 2004 .
[19] C. Stoker,et al. Organic degradation under simulated Martian conditions. , 1997, Journal of geophysical research.
[20] C. McKay,et al. The Chemical Reactivity of the Martian Soil and Implications for Future Missions , 1994 .
[21] Christopher P. McKay,et al. Formation of methane in comet impacts: implications for Earth, Mars, and Titan , 2004 .
[22] Y. Nosaka,et al. Adsorption and photocatalytic decomposition of amino acids in TiO2 photocatalytic systems. , 2006, The journal of physical chemistry. B.
[23] Seiji Sugita,et al. Methane production by large iron meteorite impacts on early Earth , 2003 .
[24] W. Harwood,et al. Frost-weathering on Mars: Experimental evidence for peroxide formation , 1979, Journal of Molecular Evolution.
[25] V. Oyama,et al. The chemical activities of the Viking biology experiments and the arguments for the presence of superoxides, peroxides, gamma-Fe2O3 and carbon suboxide polymer in the Martian soil. , 1978, Life sciences and space research.
[26] I. Shkrob,et al. Hole Scavenging and Photo-Stimulated Recombination of Electron−Hole Pairs in Aqueous TiO2 Nanoparticles , 2004, physics/0405035.
[27] R. J. Reid,et al. Mineralogic and compositional properties of Martian soil and dust: Results from Mars Pathfinder , 2000 .
[28] B. Clark,et al. Viking Biology Experiments: Lessons Learned and the Role of Ecology in Future Mars Life-Detection Experiments , 2008 .
[29] James Garry,et al. Analysis and survival of amino acids in Martian regolith analogs , 2006 .
[30] M. V. Mironenko,et al. Timing of acid weathering on Mars: A kinetic‐thermodynamic assessment , 2007 .
[31] E. Anders. Organic matter in meteorites and comets: Possible origins , 1991 .
[32] C. McKay,et al. The limitations on organic detection in Mars-like soils by thermal volatilization–gas chromatography–MS and their implications for the Viking results , 2006, Proceedings of the National Academy of Sciences.
[33] A. Banin,et al. The nanophase iron mineral(s) in Mars soil. , 1993, Journal of geophysical research.
[34] G. Mcdonald,et al. Oxidation of Organic Macromolecules by Hydrogen Peroxide: Implications for Stability of Biomarkers on Mars , 1998 .
[35] A. Bérces,et al. Seasonal and diurnal variations in Martian surface ultraviolet irradiation: biological and chemical implications for the Martian regolith , 2003, International Journal of Astrobiology.
[36] Bernard H. Foing,et al. Amino acid photostability on the Martian surface , 2005 .
[37] C. Serna,et al. Monodispersed spindle-type goethite nanoparticles from FeIII solutions , 2002 .
[38] T. Rajh,et al. Fe2O3 Nanoparticle Structures Investigated by X-ray Absorption Near-Edge Structure, Surface Modifications, and Model Calculations , 2002 .
[39] U. Bonnes,et al. Jarosite and Hematite at Meridiani Planum from Opportunity's Mössbauer Spectrometer , 2004, Science.
[40] Marco Giuranna,et al. Detection of Methane in the Atmosphere of Mars , 2004, Science.
[41] Michael D. Smith,et al. Strong Release of Methane on Mars in Northern Summer 2003 , 2009, Science.
[42] V. Krasnopolsky. Some problems related to the origin of methane on Mars , 2006 .
[43] Scott A. Sandford,et al. The Photostability of Amino Acids in Space , 2001 .
[44] Richard C. Quinn,et al. Peroxide-Modified Titanium Dioxide: a Chemical Analog of Putative Martian Soil Oxidants , 2004, Origins of life and evolution of the biosphere.
[45] Donald M. Hunten,et al. Possible oxidant sources in the atmosphere and surface of Mars , 1979, Journal of Molecular Evolution.
[46] I. Shkrob,et al. Light Induced Fragmentation of Polyfunctional Carboxylated Compounds on Hydrated Metal Oxide Particles: From Simple Organic Acids to Peptides , 2009 .
[47] D. Ming,et al. Mineralogy at Gusev Crater from the Mössbauer Spectrometer on the Spirit Rover , 2004, Science.
[48] S. Cummer,et al. Oxidant enhancement in martian dust devils and storms: storm electric fields and electron dissociative attachment. , 2006, Astrobiology.
[49] R. Mancinelli. Peroxides and the survivability of microorganisms on the surface of Mars. , 1989, Advances in space research : the official journal of the Committee on Space Research.
[50] B. Foing,et al. Investigating complex organic compounds in a simulated Mars environment , 2002, International Journal of Astrobiology.
[51] O. Mousis,et al. Variability of the methane trapping in martian subsurface clathrate hydrates , 2008, 0810.4359.
[52] Peter H. Smith,et al. The shielding effect of small-scale martian surface geometry on ultraviolet flux , 2007 .
[53] D. Ming,et al. Detection of Perchlorate and the Soluble Chemistry of Martian Soil at the Phoenix Lander Site , 2009, Science.
[54] D. Ming,et al. Mössbauer spectroscopy on Mars: goethite in the Columbia Hills at Gusev crater , 2005 .
[55] C P McKay,et al. A coupled soil-atmosphere model of H2O2 on Mars. , 1994, Icarus.
[56] M. Hecht,et al. Evidence that the reactivity of the martian soil is due to superoxide ions. , 2000, Science.
[57] C. Cockell,et al. The ultraviolet environment of Mars: biological implications past, present, and future. , 2000, Icarus.
[58] Bernard H. Foing,et al. The effects of Martian near surface conditions on the photochemistry of amino acids , 2006 .
[59] K. Ushida,et al. Reaction Mechanism of the Decomposition of Acetic Acid on Illuminated TiO2 Powder Studied by Means of in Situ Electron Spin Resonance Measurements , 1996 .
[60] P. Coll,et al. Investigating the photostability of carboxylic acids exposed to Mars surface ultraviolet radiation conditions. , 2009, Astrobiology.
[61] T. Encrenaz,et al. Hydrogen peroxide on Mars: evidence for spatial and seasonal variations , 2004 .
[62] J. Yates,et al. Photocatalysis on TiO2 Surfaces: Principles, Mechanisms, and Selected Results , 1995 .
[63] P H Smith,et al. Evidence from Opportunity's Microscopic Imager for Water on Meridiani Planum , 2004, Science.
[64] V. Romanovsky,et al. A combination of radar and thermal approaches to search for methane clathrate in the Martian subsurface , 2004 .
[65] K. Biemann. On the ability of the Viking gas chromatograph–mass spectrometer to detect organic matter , 2007, Proceedings of the National Academy of Sciences.
[66] Paul R. Mahaffy,et al. Methane and related trace species on Mars: Origin, loss, implications for life, and habitability , 2007 .
[67] Steven A Cummer,et al. Oxidant enhancement in martian dust devils and storms: implications for life and habitability. , 2006, Astrobiology.