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Diffusivities of Gases in Room-Temperature Ionic Liquids: Data and Correlations Obtained Using a Lag-Time Technique
David Morgan, Lee Ferguson and Paul Scovazzo Industrial & Engineering Chemistry Research 44(13) 4815 (2005) https://doi.org/10.1021/ie048825v
New multi-phase catalytic systems based on tin compounds active for vegetable oil transesterificaton reaction
Frederique R. Abreu, Melquizedeque B. Alves, Caio C.S. Macêdo, Luiz F. Zara and Paulo A.Z. Suarez Journal of Molecular Catalysis A: Chemical 227(1-2) 263 (2005) https://doi.org/10.1016/j.molcata.2004.11.001
The Pt(ii)-catalyzed Baeyer–Villiger oxidation of cyclohexanone with H2O2 in ionic liquids
Phase transition and decomposition temperatures, heat capacities and viscosities of pyridinium ionic liquids
Jacob M. Crosthwaite, Mark J. Muldoon, JaNeille K. Dixon, Jessica L. Anderson and Joan F. Brennecke The Journal of Chemical Thermodynamics 37(6) 559 (2005) https://doi.org/10.1016/j.jct.2005.03.013
The Inherent Capacitive Behavior of Imidazolium-based Room-Temperature Ionic Liquids at Carbon Paste Electrode
Effect of hydrophobic side‐chains on the solvation of imidazolium salts
Allan D. Headley, S. R. S. Saibabu Kotti, Jaewook Nam and Kunyu Li Journal of Physical Organic Chemistry 18(10) 1018 (2005) https://doi.org/10.1002/poc.959
Lithium-air batteries using hydrophobic room temperature ionic liquid electrolyte
Hydrogen Bonding in the Crystal Structures of the Ionic Liquid Compounds Butyldimethylimidazolium Hydrogen Sulfate, Chloride, and Chloroferrate(II,III)
Synthesis and Characterization of Ionic Liquids Incorporating the Nitrile Functionality
Dongbin Zhao, Zhaofu Fei, Rosario Scopelliti and Paul J. Dyson Inorganic Chemistry 43(6) 2197 (2004) https://doi.org/10.1021/ic034801p
Gaseous Supramolecules of Imidazolium Ionic Liquids: “Magic” Numbers and Intrinsic Strengths of Hydrogen Bonds
Fabio C. Gozzo, Leonardo S. Santos, Rodinei Augusti, Crestina S. Consorti, Jairton Dupont and Marcos N. Eberlin Chemistry – A European Journal 10(23) 6187 (2004) https://doi.org/10.1002/chem.200305742
The probe dependence of solvation dynamics and rotation in the ionic liquid 1-butyl-3-methyl-imidazolium hexafluorophosphate
Electroreduction of Dioxygen in 1-n-Alkyl-3-methylimidazolium Tetrafluoroborate Room-Temperature Ionic Liquids
Dun Zhang, Takeyoshi Okajima, Futoshi Matsumoto and Takeo Ohsaka Journal of The Electrochemical Society 151(4) D31 (2004) https://doi.org/10.1149/1.1649748
Molecular Structure, Vibrational Spectra, and Hydrogen Bonding of the Ionic Liquid 1‐Ethyl‐3‐methyl‐1H‐imidazolium Tetrafluoroborate
Sergey A. Katsyuba, Paul J. Dyson, Elena E. Vandyukova, Alla V. Chernova and Ana Vidiš Helvetica Chimica Acta 87(10) 2556 (2004) https://doi.org/10.1002/hlca.200490228
A new theory for ionic liquids—the Interstice Model : Part 1. The density and surface tension of ionic liquid EMISE
Electroanalytical Determination of Trace Chloride in Room-Temperature Ionic Liquids
Constanza Villagrán, Craig E. Banks, Christopher Hardacre and Richard G. Compton Analytical Chemistry 76(7) 1998 (2004) https://doi.org/10.1021/ac030375d
Structure of ionic liquids of 1-alkyl-3-methylimidazolium cations: A systematic computer simulation study
Development of High-Pressure Electric Conductivity Cell and its Application: Pressure Effect of Carbon Dioxide on Electric Conductivity of Ionic Liquid
Surface Spectroscopy of Room-temperature Ionic Liquids on a Platinum Electrode: A Sum Frequency Generation Study
Selimar Rivera-Rubero and Steven Baldelli The Journal of Physical Chemistry B 108(39) 15133 (2004) https://doi.org/10.1021/jp048260g
Solvation of Uranyl(II) and Europium(III) Cations and Their Chloro Complexes in a Room-Temperature Ionic Liquid. A Theoretical Study of the Effect of Solvent “Humidity”
Continuous Microflow Synthesis of Butyl Cinnamate by a Mizoroki−Heck Reaction Using a Low-Viscosity Ionic Liquid as the Recycling Reaction Medium
Shifang Liu, Takahide Fukuyama, Masaaki Sato and Ilhyong Ryu Organic Process Research & Development 8(3) 477 (2004) https://doi.org/10.1021/op034200h
Thermophysical Properties of Imidazolium-Based Ionic Liquids
Christopher P. Fredlake, Jacob M. Crosthwaite, Daniel G. Hert, Sudhir N. V. K. Aki and Joan F. Brennecke Journal of Chemical & Engineering Data 49(4) 954 (2004) https://doi.org/10.1021/je034261a
Ionic liquids derived from trialkylsulfonium bromides: Physicochemical properties and potential applications
Synthesis, Crystal Structures and Electrical Conductivities of the Ionic Liquid Compounds Butyldimethylimidazolium Tetrafluoroborate, Hexafluorophosphate and Hexafluoroantimonate
Thermodynamic Properties of 1-Butyl-3-methylimidazolium Hexafluorophosphate in the Condensed State
Gennady J. Kabo, Andrey V. Blokhin, Yauheni U. Paulechka, et al. Journal of Chemical & Engineering Data 49(3) 453 (2004) https://doi.org/10.1021/je034102r
Designing Ionic Liquids: 1‐Butyl‐3‐Methylimidazolium Cations with Substituted Tetraphenylborate Counterions
Joep van den Broeke, Marjolijn Stam, Martin Lutz, Huub Kooijman, Anthony L. Spek, Berth‐Jan Deelman and Gerard van Koten European Journal of Inorganic Chemistry 2003(15) 2798 (2003) https://doi.org/10.1002/ejic.200300057
Solute Rotation and Solvation Dynamics in a Room-Temperature Ionic Liquid
J. A. Ingram, R. S. Moog, N. Ito, R. Biswas and M. Maroncelli The Journal of Physical Chemistry B 107(24) 5926 (2003) https://doi.org/10.1021/jp034231e
Stability of Divalent Europium in an Ionic Liquid: Spectroscopic Investigations in 1-Methyl-3-butylimidazolium Hexafluorophosphate
The Use of Imidazolium Ionic Liquids for the Formation and Stabilization of Ir0 and Rh0 Nanoparticles: Efficient Catalysts for the Hydrogenation of Arenes
Gledison S. Fonseca, Alexandre P. Umpierre, Paulo F. P. Fichtner, Sergio R. Teixeira and Jairton Dupont Chemistry – A European Journal 9(14) 3263 (2003) https://doi.org/10.1002/chem.200304753
Nanoscale Pt(0) Particles Prepared in Imidazolium Room Temperature Ionic Liquids: Synthesis from an Organometallic Precursor, Characterization, and Catalytic Properties in Hydrogenation Reactions
Carla W. Scheeren, Giovanna Machado, Jairton Dupont, Paulo F. P. Fichtner and Sérgio Ribeiro Texeira Inorganic Chemistry 42(15) 4738 (2003) https://doi.org/10.1021/ic034453r
Electrochemistry of 1-Butyl-3-methyl-1H-imidazolium Tetrafluoroborate Ionic Liquid
Oxidation of N,N,N′,N′-tetraalkyl-para-phenylenediamines in a series of room temperature ionic liquids incorporating the bis(trifluoromethylsulfonyl)imide anion
Russell G. Evans, Oleksiy V. Klymenko, Christopher Hardacre, Kenneth R. Seddon and Richard G. Compton Journal of Electroanalytical Chemistry 556 179 (2003) https://doi.org/10.1016/S0022-0728(03)00343-7
Physical and electrochemical properties of 1-alkyl-3-methylimidazolium tetrafluoroborate for electrolyte
A Comparison of Ruthenium‐Catalysed Arene Hydrogenation Reactions in Water and 1‐Alkyl‐3‐methylimidazolium Tetrafluoroborate Ionic Liquids
Paul J. Dyson, David J. Ellis, William Henderson and Gábor Laurenczy Advanced Synthesis & Catalysis 345(1-2) 216 (2003) https://doi.org/10.1002/adsc.200390015
Thermodynamic Properties of 1-Butyl-3-methylimidazolium Hexafluorophosphate in the Ideal Gas State†
Yauheni U. Paulechka, Gennady J. Kabo, Andrey V. Blokhin, et al. Journal of Chemical & Engineering Data 48(3) 457 (2003) https://doi.org/10.1021/je025591i
A Highly Conductive Room Temperature Molten Fluoride: EMIF⋅2.3HF
Rika Hagiwara, Takayuki Hirashige, Tetsuya Tsuda and Yasuhiko Ito Journal of The Electrochemical Society 149(1) D1 (2002) https://doi.org/10.1149/1.1421606
Room temperature ionic liquids as replacements for conventional solvents – A review
Kenneth N. Marsh, Alex Deev, Alex C-T. Wu, Emma Tran and A. Klamt Korean Journal of Chemical Engineering 19(3) 357 (2002) https://doi.org/10.1007/BF02697140
Volume Expansivities and Isothermal Compressibilities of Imidazolium and Pyridinium-Based Ionic Liquids
Apparent Anomaly during Rotating Disk Voltammetry in Ionic Liquids
Deborah L. Boxall, John J. O’Dea and Robert A. Osteryoung Journal of The Electrochemical Society 149(11) E468 (2002) https://doi.org/10.1149/1.1514647
QSPR Correlation of the Melting Point for Pyridinium Bromides, Potential Ionic Liquids
Alan R. Katritzky, Andre Lomaka, Ruslan Petrukhin, et al. Journal of Chemical Information and Computer Sciences 42(1) 71 (2002) https://doi.org/10.1021/ci0100503
Direct formation of tetrahydropyranols via catalysis in ionic liquid
Electrochemical Generation of Superoxide in Room-Temperature Ionic Liquids
Inas M. AlNashef, Matthew L. Leonard, Matthew C. Kittle, Michael A. Matthews and John. W. Weidner Electrochemical and Solid-State Letters 4(11) D16 (2001) https://doi.org/10.1149/1.1406997
NMR EVIDENCE OF HYDROGEN BOND IN 1-ETHYL-3-METHYLIMIDAZOLIUM-TETRAFLUOROBORATE ROOM TEMPERATURE IONIC LIQUID
Enzyme Catalysed Synthesis in Ambient Temperature Ionic Liquids
Tommy L. Husum, Christel T. Jørgensen, Morten W. Christensen and Ole Kirk Biocatalysis and Biotransformation 19(4) 331 (2001) https://doi.org/10.3109/10242420109003648
LIQUID/LIQUID EXTRACTION OF METAL IONS IN ROOM TEMPERATURE IONIC LIQUIDS
Ann E. Visser, Richard P. Swatloski, Scott T. Griffin, Deborah H. Hartman and Robin D. Rogers Separation Science and Technology 36(5-6) 785 (2001) https://doi.org/10.1081/SS-100103620
Does Photoisomerization Proceed in an Ionic Liquid?
Ionic liquid modified electrodes. Unusual partitioning and diffusion effects of Fe(CN)64−/3− in droplet and thin layer deposits of 1-methyl-3-(2,6-(S)-dimethylocten-2-yl)-imidazolium tetrafluoroborate