Particle size and support effects in electrocatalysis.
暂无分享,去创建一个
[1] D. Pletcher,et al. CO Oxidation on Gold in Acidic Environments: Particle Size and Substrate Effects , 2007 .
[2] B. Gates,et al. Catalysis by supported gold: correlation between catalytic activity for CO oxidation and oxidation states of gold. , 2004, Journal of the American Chemical Society.
[3] P. Stonehart,et al. Electro-catalytic Activity on Supported Platinum Crystallites for Oxygen Reduction in Sulphuric Acid , 1988 .
[4] D. Pletcher,et al. The influence of Pt particle size on the surface oxidation of titania supported platinum. , 2009, Physical chemistry chemical physics : PCCP.
[5] J. C. Davies,et al. The particle size dependence of the oxygen reduction reaction for carbon-supported platinum and palladium. , 2013, ChemSusChem.
[6] T. Madey,et al. GROWTH, MORPHOLOGY, INTERFACIAL EFFECTS AND CATALYTIC PROPERTIES OF Au ON TiO2 , 2001 .
[7] Bernard Delmon,et al. Low-Temperature Oxidation of CO over Gold Supported on TiO2, α-Fe2O3, and Co3O4 , 1993 .
[8] A combinatorial approach to the study of particle size effects on supported electrocatalysts: oxygen reduction on gold. , 2006, Journal of combinatorial chemistry.
[9] S. Blais,et al. Temperature Dependence of CO Chemisorption and Its Oxidative Desorption on the Pt(111) Electrode , 2000 .
[10] H. Gasteiger,et al. Activity benchmarks and requirements for Pt, Pt-alloy, and non-Pt oxygen reduction catalysts for PEMFCs , 2005 .
[11] M. S. Chen,et al. The Structure of Catalytically Active Gold on Titania , 2004, Science.
[12] M. J. Weaver,et al. Dependence of the electrooxidation rates of carbon monoxide at gold on the surface crystallographic orientation: a combined kinetic-surface infrared spectroscopic study , 1991 .
[13] D. Goodman,et al. Structure—Activity Relationships in Supported Au Catalysts , 2006 .
[14] M. Flytzani-Stephanopoulos,et al. Active Nonmetallic Au and Pt Species on Ceria-Based Water-Gas Shift Catalysts , 2003, Science.
[15] H. Jónsson,et al. Origin of the Overpotential for Oxygen Reduction at a Fuel-Cell Cathode , 2004 .
[16] H. Gasteiger,et al. Oxygen reduction on platinum low-index single-crystal surfaces in sulfuric acid solution. Rotating ring - Pt(hkl) disk studies , 1995 .
[17] I. Cerri,et al. Innovative catalyst supports to address fuel cell stack durability , 2013 .
[18] P. Rodríguez,et al. CO electroxidation on gold in alkaline media: a combined electrochemical, spectroscopic, and DFT study. , 2010, Langmuir : the ACS journal of surfaces and colloids.
[19] D. Pletcher,et al. The influence of support and particle size on the platinum catalysed oxygen reduction reaction. , 2009, Physical chemistry chemical physics : PCCP.
[20] D. Pletcher,et al. Enhanced activity for electrocatalytic oxidation of carbon monoxide on titania-supported gold nanoparticles. , 2007, Angewandte Chemie.
[21] K. Kinoshita,et al. Particle Size Effects for Oxygen Reduction on Highly Dispersed Platinum in Acid Electrolytes , 1990 .
[22] J. S. Lee,et al. Effects of Pretreatment Conditions on CO Oxidation over Supported Au Catalysts , 1999 .
[23] M. Haruta,et al. The influence of the preparation methods on the catalytic activity of platinum and gold supported on TiO2 for CO oxidation , 1997 .
[24] D. Thompsett,et al. Pt alloys as oxygen reduction catalysts , 2010 .
[25] T. Akita,et al. Au/TiO2 Nanosized Samples: A Catalytic, TEM, and FTIR Study of the Effect of Calcination Temperature on the CO Oxidation , 2001 .
[26] S. C. Parker,et al. Oxygen adsorption on well-defined gold particles on TiO2(110) , 1999 .
[27] Núria López,et al. On the origin of the catalytic activity of gold nanoparticles for low-temperature CO oxidation , 2004 .
[28] R. Gorte. Ceria in Catalysis: From Automotive Applications to the Water‐Gas Shift Reaction , 2010 .
[29] S. Guérin,et al. Physical vapor deposition method for the high-throughput synthesis of solid-state material libraries. , 2006, Journal of combinatorial chemistry.
[30] Yann Bultel,et al. Oxygen reduction reaction kinetics and mechanism on platinum nanoparticles inside Nafion , 2001 .
[31] D. Pletcher,et al. Combinatorial approach to the study of particle size effects in electrocatalysis: synthesis of supported gold nanoparticles. , 2006, Journal of combinatorial chemistry.
[32] P. Ross,et al. Surface science studies of model fuel cell electrocatalysts , 2002 .
[33] U. Stimming,et al. Infrared spectroscopic study of CO adsorption and electro-oxidation on carbon-supported Pt nanoparticles: Interparticle versus intraparticle heterogeneity , 2004 .
[34] S. Guérin,et al. High-throughput synthesis and screening of ternary metal alloys for electrocatalysis. , 2006, The journal of physical chemistry. B.
[35] D. Goodman,et al. Onset of catalytic activity of gold clusters on titania with the appearance of nonmetallic properties , 1998, Science.
[36] Combinatorial electrochemical screening of fuel cell electrocatalysts. , 2004, Journal of combinatorial chemistry.
[37] M. Arenz,et al. Surface electrochemistry of CO on reconstructed gold single crystal surfaces studied by infrared reflection absorption spectroscopy and rotating disk electrode. , 2004, Journal of the American Chemical Society.