Process-level modelling and optimization to evaluate metal–organic frameworks for post-combustion capture of CO2
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Benjamin J. Bucior | Karson T Leperi | Karson T. Leperi | F. You | O. Farha | R. Snurr | D. Yancy-Caballero | Timur Islamoglu | Rachelle K. Richardson
[1] Daniel Friedrich,et al. Exploring new sources of efficiency in process-driven materials screening for post-combustion carbon capture , 2020, Energy & Environmental Science.
[2] N. Mac Dowell,et al. Exploring the limits of adsorption-based CO2 capture using MOFs with PVSA – from molecular design to process economics , 2020 .
[3] J. Hupp,et al. Zirconium-Based Metal-Organic Frameworks for the Catalytic Hydrolysis of Organophosphorus Nerve Agents. , 2020, ACS applied materials & interfaces.
[4] A. Rajendran,et al. Process Optimization-Based Screening of Zeolites for Post-Combustion CO2 Capture by Vacuum Swing Adsorption , 2019, ACS Sustainable Chemistry & Engineering.
[5] Yongchul G. Chung,et al. Development of a General Evaluation Metric for Rapid Screening of Adsorbent Materials for Postcombustion CO2 Capture , 2019, ACS Sustainable Chemistry & Engineering.
[6] O. Yaghi,et al. Carbon capture and conversion using metal-organic frameworks and MOF-based materials. , 2019, Chemical Society reviews.
[7] Seda Keskin,et al. Reply to Comment on "Database for CO2 Separation Performances of MOFs Based on Computational Materials Screening". , 2019, ACS applied materials & interfaces.
[8] Kasturi Nagesh Pai,et al. Evaluation of diamine-appended metal-organic frameworks for post-combustion CO2 capture by vacuum swing adsorption , 2019, Separation and Purification Technology.
[9] A. Rajendran,et al. Analysis of a Batch Adsorber Analogue for Rapid Screening of Adsorbents for Postcombustion CO2 Capture , 2019, Industrial & Engineering Chemistry Research.
[10] J. Hupp,et al. Addressing the characterisation challenge to understand catalysis in MOFs: the case of nanoscale Cu supported in NU-1000. , 2017, Faraday discussions.
[11] Dan Zhao,et al. A highly stable metal‐organic framework with optimum aperture size for CO2 capture , 2017 .
[12] R. Krishna. Screening metal–organic frameworks for mixture separations in fixed-bed adsorbers using a combined selectivity/capacity metric , 2017 .
[13] A. Frenkel,et al. Mechanism and Kinetics for Reaction of the Chemical Warfare Agent Simulant, DMMP(g), with Zirconium(IV) MOFs: An Ultrahigh-Vacuum and DFT Study , 2017 .
[14] Carlos A. Grande,et al. CO2 Capture in Dry and Wet Conditions in UTSA-16 Metal-Organic Framework. , 2017, ACS applied materials & interfaces.
[15] H. Furukawa,et al. High Methane Storage Working Capacity in Metal-Organic Frameworks with Acrylate Links. , 2016, Journal of the American Chemical Society.
[16] Karson T Leperi,et al. Optimization of Two-Stage Pressure/Vacuum Swing Adsorption with Variable Dehydration Level for Postcombustion Carbon Capture , 2016 .
[17] A. Rajendran,et al. Do adsorbent screening metrics predict process performance? A process optimisation based study for post-combustion capture of CO2 , 2016 .
[18] S. Farooq,et al. Adsorbent Screening for Postcombustion CO2 Capture: A Method Relating Equilibrium Isotherm Characteristics to an Optimum Vacuum Swing Adsorption Process Performance , 2016 .
[19] C. Serre,et al. MIL-91(Ti), a small pore metal–organic framework which fulfils several criteria: an upscaled green synthesis, excellent water stability, high CO2 selectivity and fast CO2 transport , 2016 .
[20] P. Llewellyn,et al. Highly Selective CO2 Capture by Small Pore Scandium-Based Metal–Organic Frameworks , 2015 .
[21] I. Karimi,et al. Energy and cost estimates for capturing CO2 from a dry flue gas using pressure/vacuum swing adsorption , 2015 .
[22] Hongda Zhang,et al. A thermodynamic tank model for studying the effect of higher hydrocarbons on natural gas storage in metal–organic frameworks , 2015 .
[23] Mohammad Amanullah,et al. CO2 capture from dry flue gas by vacuum swing adsorption: A pilot plant study , 2014 .
[24] Paul A. Webley,et al. Adsorption technology for CO2 separation and capture: a perspective , 2014, Adsorption.
[25] Arvind Rajendran,et al. Cycle synthesis and optimization of a VSA process for postcombustion CO2 capture , 2013 .
[26] J. Long,et al. CO2/N2 separations with mixed-matrix membranes containing Mg2(dobdc) nanocrystals† , 2013 .
[27] A. Yazaydin,et al. A combined experimental and quantum chemical study of CO2 adsorption in the metal–organic framework CPO-27 with different metals , 2013 .
[28] Paul A. Webley,et al. A new simplified pressure/vacuum swing adsorption model for rapid adsorbent screening for CO2 capture applications , 2013 .
[29] Haihui Wang,et al. Enhancement of CO2 Adsorption and CO2/N2 Selectivity on ZIF‐8 via Postsynthetic Modification , 2013 .
[30] Rajamani Krishna,et al. Separation of Hexane Isomers in a Metal-Organic Framework with Triangular Channels , 2013, Science.
[31] Mohammad Amanullah,et al. Multiobjective Optimization of a Four-Step Adsorption Process for Postcombustion CO2 Capture Via Finite Volume Simulation , 2013 .
[32] Stephen D. Burd,et al. Porous materials with optimal adsorption thermodynamics and kinetics for CO2 separation , 2013, Nature.
[33] C. Serre,et al. An adsorbent performance indicator as a first step evaluation of novel sorbents for gas separations: application to metal-organic frameworks. , 2013, Langmuir : the ACS journal of surfaces and colloids.
[34] Yongxin Li,et al. A Rationally Designed Nitrogen-Rich Metal-Organic Framework and Its Exceptionally High CO2 and H2 Uptake Capability , 2013, Scientific Reports.
[35] Randall Q. Snurr,et al. Structure–property relationships of porous materials for carbon dioxide separation and capture , 2012 .
[36] Zhijuan Zhang,et al. Computational study of adsorption and separation of CO2, CH4, and N2 by an rht-type metal-organic framework. , 2012, Langmuir : the ACS journal of surfaces and colloids.
[37] Chongli Zhong,et al. Revealing the structure-property relationships of metal-organic frameworks for CO2 capture from flue gas. , 2012, Langmuir : the ACS journal of surfaces and colloids.
[38] Hye-Young Cho,et al. CO2 adsorption and catalytic application of Co-MOF-74 synthesized by microwave heating , 2012 .
[39] Vincent Guillerm,et al. A method for screening the potential of MOFs as CO2 adsorbents in pressure swing adsorption processes. , 2012, ChemSusChem.
[40] Maciej Haranczyk,et al. Algorithms and tools for high-throughput geometry-based analysis of crystalline porous materials , 2012 .
[41] R. Krishna,et al. Microporous metal-organic framework with potential for carbon dioxide capture at ambient conditions , 2012, Nature Communications.
[42] H. Furukawa,et al. Ring-opening reactions within porous metal-organic frameworks. , 2010, Inorganic chemistry.
[43] Randall Q Snurr,et al. Screening of metal-organic frameworks for carbon dioxide capture from flue gas using a combined experimental and modeling approach. , 2009, Journal of the American Chemical Society.
[44] D. D’Alessandro,et al. Strong CO2 binding in a water-stable, triazolate-bridged metal-organic framework functionalized with ethylenediamine. , 2009, Journal of the American Chemical Society.
[45] Armin D. Ebner,et al. Heavy reflux PSA cycles for CO2 recovery from flue gas: Part I. Performance evaluation , 2008 .
[46] Michael O'Keeffe,et al. A route to high surface area, porosity and inclusion of large molecules in crystals , 2004, Nature.
[47] Kalyanmoy Deb,et al. A fast and elitist multiobjective genetic algorithm: NSGA-II , 2002, IEEE Trans. Evol. Comput..
[48] R. T. Yang,et al. A SIMPLE PARAMETER FOR SELECTING AN ADSORBENT FOR GAS SEPARATION BY PRESSURE SWING ADSORPTION , 2001 .
[49] Chi-Wang Shu,et al. Efficient Implementation of Weighted ENO Schemes , 1995 .
[50] W. Carter,et al. Separation of Hexane Isomers in a Metal-Organic Framework with Triangular Channels , 2013 .
[51] Lawrence F. Shampine,et al. The MATLAB ODE Suite , 1997, SIAM J. Sci. Comput..