Proton conductivity and methanol rejection by ceramic membranes derived from ferroxane and alumoxane precursors

[1]  E. Teller,et al.  ADSORPTION OF GASES IN MULTIMOLECULAR LAYERS , 1938 .

[2]  E. Barrett,et al.  (CONTRIBUTION FROM THE MULTIPLE FELLOWSHIP OF BAUGH AND SONS COMPANY, MELLOX INSTITUTE) The Determination of Pore Volume and Area Distributions in Porous Substances. I. Computations from Nitrogen Isotherms , 1951 .

[3]  E. Barrett,et al.  The Determination of Pore Volume and Area Distributions in Porous Substances. II. Comparison between Nitrogen Isotherm and Mercury Porosimeter Methods , 1951 .

[4]  H. D. Orchiston ADSORPTION OF WATER VAPOR: II. CLAYS AT 25°C , 1953 .

[5]  G. A. Parks,et al.  Electrical conductivity of silica gel in the presence of adsorbed water , 1968 .

[6]  E. McCafferty,et al.  Adsorption of water vapour on α-Fe2O3 , 1971 .

[7]  U. Schwertmann,et al.  The Transformation of Lepidocrocite to Goethite , 1972 .

[8]  U. Schwertmann,et al.  The Influence of [Fe(II)], [Si], and pH on the formation of lepidocrocite and ferrihydrite during oxidation of aqueous FeCl2 solutions , 1976, Clay Minerals.

[9]  F. Ernsberger The Nonconformist Ion , 1983 .

[10]  D. G. Lewis,et al.  Infrared absorption of surface hydroxyl groups and lattice vibrations in lepidocrocite (γ-FeOOH) and boehmite (γ-AIOOH) , 1986, Clay Minerals.

[11]  W. Kenan,et al.  Impedance Spectroscopy: Emphasizing Solid Materials and Systems , 1987 .

[12]  Yao Xi,et al.  Porosity control of humidity-sensitive ceramics and theoretical model of humidity-sensitive characteristics , 1989 .

[13]  Shimshon Gottesfeld,et al.  Determination of water diffusion coefficients in perfluorosulfonate ionomeric membranes , 1991 .

[14]  Hideaki Yagi,et al.  Humidity Sensor Using Al2O3, TiO2 and SnO2 Prepared by Sol-Gel Method , 1992 .

[15]  A. Barron,et al.  Siloxy-substituted alumoxanes: synthesis from polydialkylsiloxanes and trimethylaluminium, and application as aluminosilicate precursors , 1993 .

[16]  P. Refait,et al.  The oxidation of ferrous hydroxide in chloride-containing aqueous media and pourbaix diagrams of green rust one , 1993 .

[17]  J. McCarthy,et al.  Adsorption and desorption of natural organic matter on iron oxide: mechanisms and models. , 1994, Environmental science & technology.

[18]  Enrico Traversa,et al.  Ceramic sensors for humidity detection: the state-of-the-art and future developments , 1995 .

[19]  U. Schwertmann,et al.  The Iron Oxides: Structure, Properties, Reactions, Occurrences and Uses , 2003 .

[20]  P. Ekdunge,et al.  Proton Conductivity of Nafion 117 as Measured by a Four‐Electrode AC Impedance Method , 1996 .

[21]  A. Barron,et al.  Aqueous Synthesis of Water-Soluble Alumoxanes: Environmentally Benign Precursors to Alumina and Aluminum-Based Ceramics , 1997 .

[22]  G. Granozzi,et al.  Reactivity of simple alcohols on Fe2O3powders , 1998 .

[23]  G. Granozzi,et al.  Reactivity of simple alcohols on Fe 2 O 3 powders An XPS and FTIR study , 1998 .

[24]  S. Greenbaum,et al.  Electrical Conductivity and NMR Studies of Methanol/Water Mixtures in Nafion Membranes. , 1998 .

[25]  D. Desmarteau,et al.  Proton Conductivity in Nafion® 117 and in a Novel Bis[(perfluoroalkyl)sulfonyl]imide Ionomer Membrane , 1998 .

[26]  M. Nogami,et al.  Proton Conduction in Porous Silica Glasses with High Water Content. , 1998 .

[27]  M. Anderson,et al.  Nanopore Ceramic Membranes as Novel Electrolytes for Proton Exchange Membranes , 1999 .

[28]  T. Hayakawa,et al.  Hydrogen Gas Sensing by Sol‐Gel‐Derived Proton‐Conducting Glass Membranes , 1999 .

[29]  G. Duclos New York 1987 , 2000 .

[30]  M. Anderson,et al.  Effect of Pore-Wall Chemistry on Proton Conductivity in Mesoporous Titanium Dioxide , 2000 .

[31]  M. Anderson,et al.  High porosity silica xerogels prepared by a particulate sol gel route: pore structure and proton conductivity , 2001 .

[32]  S. Gupta,et al.  Mononuclear iron(III)macrocyclic complexes derived from 4-methyl-2,6-di(formyl/benzoyl)phenol and diamines: synthesis, spectral speciation and electrochemical behaviour , 2001 .

[33]  A. Bacchi,et al.  The Fe(III) complexes with a doubly deprotonated polydentate acylhydrazone: crystal structure of the first diamagnetic μ-oxo-diiron(III) complex , 2001 .

[34]  A. Barron,et al.  Synthesis and Characterization of Carboxylate−FeOOH Nanoparticles (Ferroxanes) and Ferroxane-Derived Ceramics , 2002 .

[35]  A. Barron,et al.  Ceramic membranes derived from ferroxane nanoparticles: a new route for the fabrication of iron oxide ultrafiltration membranes , 2003 .

[36]  Su-Moon Park,et al.  Peer Reviewed: Electrochemical Impedance Spectroscopy for Better Electrochemical Measurements , 2003 .

[37]  U. Schwertmann,et al.  Iron Oxides , 2003, SSSA Book Series.

[38]  Dawn M. Crawford,et al.  Triblock copolymer ionomer membranes: Part I. Methanol and proton transport , 2003 .

[39]  Su-Moon Park,et al.  Electrochemical impedance spectroscopy for better electrochemical measurements. , 2003, Analytical chemistry.

[40]  Michelle Foster,et al.  Fourier transform infrared study of methanol, water, and acetic acid on MgO(100) , 2004 .

[41]  B. Pivovar,et al.  Sulfonated poly(arylene ether sulfone) copolymer proton exchange membranes: composition and morphology effects on the methanol permeability , 2004 .

[42]  B. Hwang,et al.  High proton conductive glass electrolyte synthesized by an accelerated sol–gel process with water/vapor management , 2004 .

[43]  H. Vosloo,et al.  A comparison of methanol permeability in Chitosan and Nafion 117 membranes at high to medium methanol concentrations , 2004 .

[44]  Haoshen Zhou,et al.  A self-ordered, crystalline glass, mesoporous nanocomposite with high proton conductivity of 2 x 10(-2) S cm-1 at intermediate temperature. , 2005, Journal of the American Chemical Society.

[45]  Chuanyi Wang,et al.  Comparative study of acetic acid, methanol, and water adsorbed on anatase TiO2 probed by sum frequency generation spectroscopy. , 2005, Journal of the American Chemical Society.

[46]  A. Nakao,et al.  Characterization and electrochemical properties of P2O5–ZrO2–SiO2 glasses as proton conducting electrolyte , 2006 .