The interactions among fluid species such as H2O, CO2, and CH4 confined in nano- and meso-pores in shales and other rocks is of central concern to understanding the chemical behavior and transport properties of these species in the earth's subsurface and is of special concern to geological C-sequestration and enhanced production of oil and natural gas. The behavior of CO2, and CH4 is less well understood than that of H2O. This paper presents the results of a computational modeling study of the partitioning of CO2 and CH4 between bulk fluid and nano- and meso-pores bounded by the common clay mineral montmorillonite. The calculations were done at 323 K and a total fluid pressure of 124 bars using a novel approach (constant reservoir composition molecular dynamics, CRC-MD) that uses bias forces to maintain a constant composition in the fluid external to the pore. This purely MD approach overcomes the difficulties in making stochastic particle insertion-deletion moves in dense fluids encountered in grand canonical Monte Carlo and related hybrid approaches. The results show that both the basal siloxane surfaces and protonated broken edge surfaces of montmorillonite both prefer CO2 relative to CH4 suggesting that methods of enhanced oil and gas production using CO2 will readily displace CH4 from such pores. This preference for CO2 is due to its preferred interaction with the surfaces and extends to approximately 20 Å from them.
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http://dx.doi.org/10.1039/c9cp00851a | DOI Listing |
Polymers (Basel)
April 2024
Key Laboratory of Designed Synthesis and Application of Polymer Materials (DSAPM Lab), Key Laboratory for Polymer Composite and Functional Materials of Ministry of Education (PCFM Lab), School of Chemistry, Sun Yat-sen University, Guangzhou 510006, China.
A nano-structured conjugated polymer with multiple micro-/meso-pores was synthesized by post-crosslinking of an end-functionalized hyperbranched conjugated prepolymer. Firstly, an AB monomer 3-((3,5-dibromo-4-(octyloxy)phenyl)ethynyl)-6-ethynyl-9-octyl-9H-carbazole (PECz) was synthesized and polymerized by Sonogashira reaction to give the -Br end-functionalized hyperbranched conjugated prepolymer -PPECz. The photophysical and electrochemical properties of -PPECz were investigated.
View Article and Find Full Text PDFJ Colloid Interface Sci
December 2022
School of Chemical Engineering, Sichuan University, Chengdu, 610065, China. Electronic address:
The application value of silicon-based anodes has not been fully realized due to the ∼ 300% volume expansion and poor electronic conductivity. In present study, mesoporous Si/C (MP-Si/C) composite with nanosized primary particles of 30-50 nm and pore diameter of 20-40 nm was proposed, which displays superior Li storage properties. Firstly, Polyacrylic acid (PAA) was applied to fulfill in-situ carbon coating and inhibit the particle growth of SiO generated from tetraethyl orthosilicate (TEOS) in stöber reaction.
View Article and Find Full Text PDFChem Sci
January 2020
Michael Grätzel Center for Mesoscopic Solar Cells , Wuhan National Laboratory for Optoelectronics , China-EU Institute for Clean and Renewable Energy , Huazhong University of Science and Technology, Wuhan 430074 , Hubei , P. R. China . Email: ; Email:
Printable mesoscopic perovskite solar cells are usually fabricated by drop-casting perovskite precursor solution on a screen-printed mesoporous TiO/ZrO/carbon triple-layer followed by thermal annealing. They have attracted much attention due to their simple fabrication process and remarkable stability. However, challenges lie in how to achieve complete pore fillings of perovskites in the meso-pores and to obtain high-quality perovskite crystals.
View Article and Find Full Text PDFNanomaterials (Basel)
September 2019
National Research Council-Institute for Microelectronics and Microsystems (CNR-IMM), Zona Industriale-Strada VIII n°5, 95121 Catania, Italy.
We created a blend between a TiO sponge with bimodal porosity and a Methyl-Ammonium Lead Iodide (MAPbI) perovskite. The interpenetration of the two materials is effective thanks to the peculiar sponge structure. During the early stages of the growth of the TiO sponge, the formation of 5-10 nm-large TiO auto-seeds is observed which set the micro-porosity (<5 nm) of the layer, maintained during further growth.
View Article and Find Full Text PDFPhys Chem Chem Phys
March 2019
Department of Chemistry, Michigan State University, East Lansing, Michigan 48824, USA.
The interactions among fluid species such as H2O, CO2, and CH4 confined in nano- and meso-pores in shales and other rocks is of central concern to understanding the chemical behavior and transport properties of these species in the earth's subsurface and is of special concern to geological C-sequestration and enhanced production of oil and natural gas. The behavior of CO2, and CH4 is less well understood than that of H2O. This paper presents the results of a computational modeling study of the partitioning of CO2 and CH4 between bulk fluid and nano- and meso-pores bounded by the common clay mineral montmorillonite.
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