Modeling ion induced effects in thin films and coatings for lunar and space environment applications
暂无分享,去创建一个
[1] Thomas A. Parnell,et al. Radiation Effects and Protection for Moon and Mars Missions , 1998 .
[2] John Weir,et al. The effects of ionizing radiation, temperature, and space contamination effects on photonic coatings , 2009, Optical Engineering + Applications.
[3] G. Badhwar,et al. Galactic cosmic radiation model and its applications. , 1996, Advances in space research : the official journal of the Committee on Space Research.
[4] John Weir,et al. Irradiation of hydrophobic coating materials by gamma rays and protons: space applications , 2010, Optical Engineering + Applications.
[5] M. Velderrain,et al. Ultra Low Outgassing silicone performance in a simulated space ionizing radiation environment , 2010, Optical Engineering + Applications.
[6] John Weir,et al. Space radiation resistant hybrid and polymer materials for solar cells , 2010, 2010 35th IEEE Photovoltaic Specialists Conference.
[7] John Weir,et al. The effects of ionizing radiation, temperature, and space contamination effects on self-cleaning and anti-contamination coatings , 2008, Optical Engineering + Applications.
[8] A. F. Barghouty,et al. The Exploration Atmospheres Working Group's Report on Space Radiation Shielding Materials , 2006 .
[9] Edward W. Taylor,et al. Effect of ionizing radiation on the properties of superhydrophobic silicone surfaces , 2010, Optical Engineering + Applications.
[10] Vishwas G. Pangarkar,et al. Photocatalytic degradation for environmental applications – a review , 2002 .
[11] M.M.R. Williams,et al. The stopping and ranges of ions in matter , 1978 .
[12] D. Haggerty,et al. Long-Term Fluences of Solar Energetic Particles from H to Fe , 2007 .
[13] S. Aber,et al. Preparation and Investigation of Photocatalytic Properties of ZnO Nanocrystals: Effect of Operational Parameters and Kinetic Study , 2008 .
[14] Edward W. Taylor. Performance of the first operable fiber optic systems in prolonged space orbit , 1992, Defense, Security, and Sensing.
[15] J. Wilson,et al. Approach and issues relating to shield material design to protect astronauts from space radiation. , 2001, Materials & design.
[16] N. Hasebe,et al. HZE Particle and Neutron Dosages from Cosmic Rays on the Lunar Surface , 2009 .
[17] Edward J. Wolfrum,et al. Bactericidal Activity of Photocatalytic TiO2 Reaction: toward an Understanding of Its Killing Mechanism , 1999, Applied and Environmental Microbiology.
[18] D. McKnight,et al. Space debris and micrometeorite events experienced by WL experiment 701 in prolonged low earth orbit , 1990 .
[19] Thomas A. Parnell,et al. Revolutionary Concepts of Radiation Shielding for Human Exploration of Space , 2005 .
[20] L. Simonsen,et al. Radiation protection for human missions to the Moon and Mars , 1991 .
[21] Lawrence W. Townsend,et al. Solar-flare shielding with regolith at a lunar-base site , 1988 .
[22] Edward W. Taylor,et al. Analyses of space environment effects on active fiber optic links orbited aboard the LDEF , 1993 .
[23] I. R. Cameron,et al. Nuclear Fission Reactors , 1982 .
[24] R S Pease,et al. REVIEW ARTICLES: The Displacement of Atoms in Solids by Radiation , 1955 .
[25] V. Murugesan,et al. Solar photocatalytic degradation of azo dye: comparison of photocatalytic efficiency of ZnO and TiO2 , 2003 .