Determination of the upper limits, benchmarks, and critical properties for gas separations using stabilized room temperature ionic liquid membranes (SILMs) for the purpose of guiding future research
暂无分享,去创建一个
[1] Robert Quinn,et al. New facilitated transport membranes for the separation of carbon dioxide from hydrogen and methane , 1995 .
[2] S. Dai,et al. Recovery of Cesium Extracted from Simulated Tank Waste with an Ionic Liquid: Water and Oxygen Effects , 2006 .
[3] C. Liang,et al. Advanced Liquid Membranes Based on Novel Ionic Liquids for Selective Separation of Olefin/Paraffin via Olefin-Facilitated Transport , 2008 .
[4] Roda Bounaceur,et al. Membrane processes for post-combustion carbon dioxide capture: A parametric study , 2006 .
[5] Po-Yu Chen,et al. Electrodeposition of cesium at mercury electrodes in the tri-1-butylmethylammonium bis((trifluoromethyl)sulfonyl)imide room-temperature ionic liquid , 2004 .
[6] Jason E. Bara,et al. Bulk-fluid solubility and membrane feasibility of rmim-based room-temperature ionic liquids , 2006 .
[7] Paul Scovazzo,et al. Correlations of Low-Pressure Carbon Dioxide and Hydrocarbon Solubilities in Imidazolium-, Phosphonium-, and Ammonium-Based Room-Temperature Ionic Liquids. Part 1. Using Surface Tension , 2008 .
[8] M. Gomes,et al. Solubility of carbon dioxide, ethane, methane, oxygen, nitrogen, hydrogen, argon, and carbon monoxide in 1-butyl-3-methylimidazolium tetrafluoroborate between temperatures 283 K and 343 K and at pressures close to atmospheric , 2006 .
[9] Ioanna Ntai,et al. CO(2) capture by a task-specific ionic liquid. , 2002, Journal of the American Chemical Society.
[10] Qunsheng Li,et al. UNIFAC Model for Ionic Liquids , 2009 .
[11] R. Noble,et al. Diffusion and Solubility Measurements in Room Temperature Ionic Liquids , 2006 .
[12] R. Mahajan,et al. Pushing the limits on possibilities for large scale gas separation: which strategies? , 2000 .
[13] Zheng Zhou,et al. SO2 gas separation using supported ionic liquid membranes. , 2007, The journal of physical chemistry. B.
[14] Dianne E. Wiley,et al. Reducing the Cost of CO2 Capture from Flue Gases Using Membrane Technology , 2008 .
[15] R. Baltus,et al. Experimental Measurement of the Solubility and Diffusivity of CO2 in Room-Temperature Ionic Liquids Using a Transient Thin-Liquid-Film Method , 2007 .
[16] Collin R. Becker,et al. Low Pressure Hydrocarbon Solubility in Room Temperature Ionic Liquids Containing Imidazolium Rings Interpreted Using Regular Solution Theory , 2005 .
[17] Marcel Mulder,et al. Basic Principles of Membrane Technology , 1991 .
[18] Andrew L. Ferguson,et al. Diffusivities of Gases in Room-Temperature Ionic Liquids: Data and Correlations Obtained Using a Lag-Time Technique , 2005 .
[19] D. Macfarlane,et al. Ionic liquids based on imidazolium, ammonium and pyrrolidinium salts of the dicyanamide anion , 2002 .
[20] M. Abraham,et al. LFER correlations for room temperature ionic liquids: Separation of equation coefficients into individual cation-specific and anion-specific contributions , 2008 .
[21] P. Scovazzo,et al. Long-term, continuous mixed-gas dry fed CO2/CH4 and CO2/N2 separation performance and selectivities for room temperature ionic liquid membranes , 2009 .
[22] William J. Koros,et al. Defining the challenges for C3H6/C3H8 separation using polymeric membranes , 2003 .
[23] Paul Scovazzo,et al. Solubility, Diffusivity, and Permeability of Gases in Phosphonium-Based Room Temperature Ionic Liquids: Data and Correlations , 2007 .
[24] Jason E. Bara,et al. Room-Temperature Ionic Liquids: Temperature Dependence of Gas Solubility Selectivity , 2008 .
[25] Joan F. Brennecke,et al. High temperature separation of carbon dioxide/hydrogen mixtures using facilitated supported ionic liquid membranes ! , 2008 .
[26] L. Robeson,et al. Correlation of separation factor versus permeability for polymeric membranes , 1991 .
[27] Benny D. Freeman,et al. Basis of Permeability/Selectivity Tradeoff Relations in Polymeric Gas Separation Membranes , 1999 .
[28] Jason E. Bara,et al. Enhanced CO2 separation selectivity in oligo(ethylene glycol) functionalized room-temperature ionic liquids , 2007 .
[29] Jason E. Bara,et al. Gas separations in fluoroalkyl-functionalized room-temperature ionic liquids using supported liquid membranes , 2009 .
[30] R. Noble,et al. Regular Solution Theory and CO2 Gas Solubility in Room-Temperature Ionic Liquids , 2004 .
[31] Hideto Matsuyama,et al. CO2 separation facilitated by task-specific ionic liquids using a supported liquid membrane , 2008 .
[32] Paul Scovazzo,et al. Gas separations using non-hexafluorophosphate [PF6]− anion supported ionic liquid membranes , 2004 .
[33] Paul Scovazzo,et al. Correlations of Low-Pressure Carbon Dioxide and Hydrocarbon Solubilities in Imidazolium-, Phosphonium-, and Ammonium-Based Room-Temperature Ionic Liquids. Part 2. Using Activation Energy of Viscosity , 2008 .
[34] Wenchuan Wang,et al. Screening of ionic liquids to capture CO2 by COSMO-RS and experiments , 2008 .
[35] K. Char,et al. Effect of the polarity of silver nanoparticles induced by ionic liquids on facilitated transport for the separation of propylene/propane mixtures , 2008 .
[36] P. Scovazzo,et al. Gas permeabilities, solubilities, diffusivities, and diffusivity correlations for ammonium-based room temperature ionic liquids with comparison to imidazolium and phosphonium RTIL data , 2009 .
[37] D. Armstrong,et al. Do ion tethered functional groups affect IL solvent properties? The case of sulfoxides and sulfones. , 2006, Chemical communications.
[38] Jason E. Bara,et al. Interpretation of CO2 Solubility and Selectivity in Nitrile-Functionalized Room-Temperature Ionic Liquids Using a Group Contribution Approach , 2008 .