Thermal and photochemical reactions of methanol on nanocrystalline anatase TiO2 thin films.
暂无分享,去创建一个
[1] H. M. Jang,et al. Enhanced photocatalytic activity of {101}-oriented bipyramidal TiO2 agglomerates through interparticle charge transfer , 2015 .
[2] Tarek A. Kandiel,et al. Photocatalytic and photoelectrochemical oxidation mechanisms of methanol on TiO2 in aqueous solution , 2014 .
[3] C. Friend. Perspectives on heterogeneous photochemistry. , 2014, Chemical record.
[4] Zili Wu,et al. Adsorption and Reaction of Acetaldehyde on Shape-Controlled CeO2 Nanocrystals: Elucidation of Structure–Function Relationships , 2014 .
[5] Wenshao Yang,et al. Molecular hydrogen formation from photocatalysis of methanol on anatase-TiO₂(101). , 2014, Journal of the American Chemical Society.
[6] Wenshao Yang,et al. Molecular hydrogen formation from photocatalysis of methanol on TiO2(110). , 2013, Journal of the American Chemical Society.
[7] J. Vohs. Site requirements for the adsorption and reaction of oxygenates on metal oxide surfaces. , 2013, Chemical reviews.
[8] Sihui Zhan,et al. In-situ studies of nanocatalysis. , 2013, Accounts of chemical research.
[9] Yunsheng Ma,et al. Photocatalytic cross-coupling of methanol and formaldehyde on a rutile TiO2(110) surface. , 2013, Journal of the American Chemical Society.
[10] B. Mojet,et al. Ceria Nanocatalysts: Shape Dependent Reactivity and Formation of OH , 2013 .
[11] Stephen C. Jensen,et al. Sequential photo-oxidation of methanol to methyl formate on TiO2(110). , 2013, Journal of the American Chemical Society.
[12] Z. Dohnálek,et al. Importance of Diffusion in Methanol Photochemistry on TiO2(110) , 2012 .
[13] M. A. Henderson,et al. Role of Water in Methanol Photochemistry on Rutile TiO2(110) , 2012 .
[14] P. Fornasiero,et al. Nonaqueous synthesis of TiO2 nanocrystals using TiF4 to engineer morphology, oxygen vacancy concentration, and photocatalytic activity. , 2012, Journal of the American Chemical Society.
[15] Jiaguo Yu,et al. Fluorine ions-mediated morphology control of anatase TiO2 with enhanced photocatalytic activity. , 2012, Physical chemistry chemical physics : PCCP.
[16] M. A. Henderson,et al. Identification of the Active Species in Photochemical Hole Scavenging Reactions of Methanol on TiO2 , 2011 .
[17] Siglinda Perathoner,et al. Creating and mastering nano-objects to design advanced catalytic materials , 2011 .
[18] M. A. Henderson. A surface science perspective on TiO2 photocatalysis , 2011 .
[19] Andrea R. Gerson,et al. Resolving surface chemical states in XPS analysis of first row transition metals, oxides and hydroxides: Sc, Ti, V, Cu and Zn , 2010 .
[20] R. Schlögl,et al. Oxide thin films based on ordered arrays of 1D nanostructure. A possible approach toward bridging material gap in catalysis. , 2007, Physical chemistry chemical physics : PCCP.
[21] Ya-Wen Zhang,et al. Shape-selective synthesis and oxygen storage behavior of ceria nanopolyhedra, nanorods, and nanocubes. , 2005, The journal of physical chemistry. B.
[22] R. Schlögl,et al. The microstructure of copper zinc oxide catalysts: bridging the materials gap. , 2005, Angewandte Chemie.
[23] J. E. Lyons,et al. Surface chemistry and catalysis on well-defined oxide surfaces: nanoscale design bases for single-site heterogeneous catalysts , 2003 .
[24] U. Diebold,et al. Experimental Investigation of the Interaction of Water and Methanol with Anatase−TiO2(101) , 2003 .
[25] E. Altman,et al. Structure and chemical reactivity of adsorbed carboxylic acids on anatase TiO2(0 0 1) , 2002 .
[26] M. Lazzeri,et al. Stress-driven reconstruction of an oxide surface: the anatase TiO(2)(001)-(1 x 4) surface. , 2001, Physical review letters.
[27] T. Risse,et al. Models in heterogeneous catalysis: Surface science quo vadis? , 2001 .
[28] E. Altman,et al. Surface structure of anatase TiO 2 (001): Reconstruction, atomic steps, and domains , 2001 .
[29] M. Barteau,et al. Active sites on oxides: From single crystals to catalysts , 2000 .
[30] M. Grätzel,et al. Structure and stability of the anatase TiO2 (101) and (001) surfaces , 2000 .
[31] Gao,et al. Structure determination of the two-domain ( 1x4) anatase TiO2(001) surface , 2000, Physical review letters.
[32] M. A. Henderson,et al. Electron-induced decomposition of methanol on the vacuum-annealed surface of TiO2(110) , 1998 .
[33] M. Barteau. Organic Reactions at Well-Defined Oxide Surfaces. , 1996, Chemical reviews.
[34] J. Yates,et al. Photocatalysis on TiO2 Surfaces: Principles, Mechanisms, and Selected Results , 1995 .
[35] M. Barteau,et al. The Effects of Bulk Titania Crystal Structure on the Adsorption and Reaction of Aliphatic Alcohols , 1995 .
[36] M. Barteau. Site requirements of reactions on oxide surfaces , 1993 .
[37] M. Barteau,et al. Structure and composition requirements for deoxygenation, dehydration, and ketonization reactions of carboxylic acids on TiO2(001) single-crystal surfaces , 1990 .
[38] M. Barteau,et al. Reactions of methanol on TiO2(001) single crystal surfaces , 1989 .
[39] M. Barteau,et al. Pathways for carboxylic acid decomposition on titania , 1988 .
[40] M. Barteau,et al. Adsorption and decomposition of aliphatic alcohols on titania , 1988 .
[41] R. Kurtz. Stimulated desorption studies of defect structures on TiO2 , 1986 .
[42] L. Firment. Thermal faceting of the rutile TiO2(001) surface , 1982 .
[43] A. Selloni. Crystal growth: Anatase shows its reactive side. , 2008, Nature materials.
[44] Ulrike Diebold,et al. The surface science of titanium dioxide , 2003 .
[45] Annabella Selloni,et al. Stress-Driven Reconstruction of an Oxide Surface , 2001 .
[46] M. A. Henderson,et al. The chemistry of methanol on the TiO2(110) surface: the influence of vacancies and coadsorbed species , 1999 .