Microporous Hyper-Cross-Linked Aromatic Polymers Designed for Methane and Carbon Dioxide Adsorption

被引:109
作者
Errahali, M. [1 ,2 ]
Gatti, G. [1 ,2 ]
Tei, L. [1 ,2 ]
Paul, G. [1 ,2 ]
Rolla, G. A. [1 ,2 ]
Canti, L. [1 ,2 ]
Fraccarollo, A. [1 ,2 ]
Cossi, M. [1 ,2 ]
Comotti, A. [3 ]
Sozzani, P. [3 ]
Marchese, L. [1 ,2 ]
机构
[1] Univ Piemonte Orientale, Dipartimento Sci & Innovaz Tecnol, I-15121 Alessandria, Italy
[2] Univ Piemonte Orientale, Ctr NanoSiSTeMI, I-15121 Alessandria, Italy
[3] Univ Milano Bicocca, Dept Mat Sci, I-20125 Milan, Italy
关键词
METAL-ORGANIC FRAMEWORKS; MIXED-MATRIX MEMBRANES; HIGH-PRESSURE METHANE; SURFACE-AREA; GAS-STORAGE; HYDROGEN; NETWORKS; POLYSTYRENE; PREDICTION; POROSITY;
D O I
10.1021/jp5096695
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
A Friedel-Crafts reaction was used to obtain covalent aromatic networks with high surface area and microporosity suited for CO2 and CH4 adsorption, even at low pressures. Starting from tetraphenylmethane and formaldehyde dimethyl acetal in different concentrations, the reaction yields porous polymers which were characterized with a wealth of experimental and computational methods. Thermogravimetry, infrared spectroscopy, and solid-state NMR were used to study the material structure. The pore distributions were measured by applying nonlocal density functional theory analysis to the adsorption isotherms of N-2 at 77 K and Ar at 87 K (the latter being more suited for pore widths less than 10 angstrom). Carbon dioxide and methane were adsorbed at 273 and 298 K to evaluate the performance of these systems in gas capture, separation, and storage. A theoretical model of the porous network was defined to describe the ordered fraction of the material, with particular attention to ultramicropores. Ar, CO2, and CH4 adsorption in this model material was simulated by Monte Carlo techniques with a purposely optimized force field.
引用
收藏
页码:28699 / 28710
页数:12
相关论文
共 51 条
[31]   Micropore size distributions of activated carbons and carbon molecular sieves assessed by high-pressure methane and carbon dioxide adsorption isotherms [J].
Lozano-Castelló, D ;
Cazorla-Amorós, D ;
Linares-Solano, A ;
Quinn, DF .
JOURNAL OF PHYSICAL CHEMISTRY B, 2002, 106 (36) :9372-9379
[32]   Porous Polymer Networks: Synthesis, Porosity, and Applications in Gas Storage/Separation [J].
Lu, Weigang ;
Yuan, Daqiang ;
Zhao, Dan ;
Schilling, Christine Inge ;
Plietzsch, Oliver ;
Muller, Thierry ;
Braese, Stefan ;
Guenther, Johannes ;
Blumel, Janet ;
Krishna, Rajamani ;
Li, Zhen ;
Zhou, Hong-Cai .
CHEMISTRY OF MATERIALS, 2010, 22 (21) :5964-5972
[33]   Microporous organic polymers synthesized by self-condensation of aromatic hydroxymethyl monomers [J].
Luo, Yali ;
Zhang, Shoucun ;
Ma, Yunxiang ;
Wang, Wei ;
Tan, Bien .
POLYMER CHEMISTRY, 2013, 4 (04) :1126-1131
[34]   Hypercrosslinked Aromatic Heterocyclic Microporous Polymers: A New Class of Highly Selective CO2 Capturing Materials [J].
Luo, Yali ;
Li, Buyi ;
Wang, Wei ;
Wu, Kangbing ;
Tan, Bien .
ADVANCED MATERIALS, 2012, 24 (42) :5703-5707
[35]   Gas storage in porous metal-organic frameworks for clean energy applications [J].
Ma, Shengqian ;
Zhou, Hong-Cai .
CHEMICAL COMMUNICATIONS, 2010, 46 (01) :44-53
[36]   Hypercrosslinked organic polymer networks as potential adsorbents for pre-combustion CO2 capture [J].
Martin, Claudia F. ;
Stoeckel, Ev ;
Clowes, Rob ;
Adams, Dave J. ;
Cooper, Andrew I. ;
Pis, Jose J. ;
Rubiera, Fernando ;
Pevida, Cova .
JOURNAL OF MATERIALS CHEMISTRY, 2011, 21 (14) :5475-5483
[37]   Polymers of intrinsic microporosity (PIMs): organic materials for membrane separations, heterogeneous catalysis and hydrogen storage [J].
McKeown, Neil B. ;
Budd, Peter M. .
CHEMICAL SOCIETY REVIEWS, 2006, 35 (08) :675-683
[38]  
Mueller U., 2004, US Pat, Patent No. [6 617 467, 6617467]
[39]  
Neimark A.V., 2008, HDB HETEROGENEOUS CA
[40]   Hydrogen physisorption in metal-organic porous crystals [J].
Panella, B ;
Hirscher, M .
ADVANCED MATERIALS, 2005, 17 (05) :538-+