[1] CHEN B,ZHU Y,XIA Y. Controlled in situ synthesis of graphene oxide/zeolitic imidazolate framework composites with enhanced CO2 uptake capacity[J]. RSC Advances,2015,5: 30464-30471.
[2] VOSS C. CO2 removal by PSA: an industrial view on opportunities and challenges[J]. Adsorption,2014,20: 295-299.
[3] ZHANG J,YAO Z Z,XIANG S,et al. Perspective of microporous metal-organic frameworks for CO2 capture and separation[J]. Energy & Environmental Science,2014,7: 2868-2899.
[4] LI P Z,ZHAO Y. Nitrogen-rich porous adsorbents for CO2 capture and storage[J]. Chemistry-An Asian Journal,2013,8: 1680-1691.
[5] ZHU B,LI K,LIU J,et al. Nitrogen-enriched and hierarchically porous carbon macro-spheres-ideal for large-scale CO2 capture[J]. Journal of Materials Chemistry A,2014,2: 5481-5489.
[6] HAO G P,LI W C,QIAN D,et al.,Structurally designed synthesis of mechanically stable poly(benzoxazine-co-resol)-based porous carbon monoliths and their application as high-performance CO2 capture sorbents[J]. Journal of the American Chemical Society,2011,133: 11378-11388.
[7] SALEH M,TIWARI J N,KEMP K C,et al. Highly selective and stable carbon dioxide uptake in polyindole-derived microporous carbon materials[J]. Environmental & Science Technology,2013,47: 5467-5473.
[8] WANG J,SENKOVSKA I,OSCHATZ M,et al. Highly porous nitrogen-doped polyimine-based carbons with adjustable microstructures for CO2 capture[J]. Journal of Materials Chemistry A,2013,1: 10951-10961.
[9] ZHENG D,JIA M,XU B,et al. The simple preparation of a hierarchical porous carbon with high surface area for high performance supercapacitors[J]. New Carbon Materials,2013,28: 151-155.
[10] XU B,WU F,MU D,et al. Activated carbon prepared from PVDC by NaOH activation as electrode materials for high performance EDLCs with non-aqueous electrolyte[J]. International Journal of Hydrogen Energy,2010,35: 632-637.
[11] ENDO M,KIM Y J,TAKEDA T,et al. Poly(vinylidene chloride)-based carbon as an electrode material for high power capacitors with an aqueous electrolyte[J]. Journal of the Electrochemical Society,2001,148: A1135-A1140.
[12] XU B,WU F,CHEN S,et al. A simple method for preparing porous carbon by PVDC pyrolysis[J]. Colloids and Surfaces A,2008,316: 85-88.
[13] REN W,LI F,TAN P,et al. Raman evidence for atomic correlation between the two constituent tubes in double-walled carbon nanotubes[J]. Physical Review B,2006,73: 115430.
[14] SING K S W,EVERETT D H,HAUL R,et al. Reporting physisorption data for gas/solid systems with special reference to the determination of surface area and porosity[J]. Pure & Applied Chemistry,1982,54: 2201-2218.
[15] DE SOUZA L K C,WICKRAMARATNE N,ELLO A S,et al. Enhancement of CO2 adsorption on phenolic resin-based mesoporous carbons by KOH activation[J]. Carbon,2013,65: 334-340.
[16] SAHA D,BAO Z,JIA F,et al. Adsorption of CO2,CH4,N2O,and N2 on MOF-5,MOF-177,and Zeolite 5A[J]. Environmental & Science Technology,2010,44: 1820-1826.
[17] WAHBY A,RAMOS-FERNÁNDEZ J M,MARTÍNEZ-ESCANDELL M,et al.High-surface-area carbon molecular sieves for selective CO2 adsorption[J]. Chem Sus Chem,2010,3: 974-981.
[18] SEVILLA M,FUERTES A B,Sustainable porous carbons with a superior performance for CO2 capture[J]. Energy & Environmental Science,2011,4: 1765-1771.
[19] MASON J A,VEENSTRA M,LONG J R. Evaluating metal-organic frameworks for natural gas storage[J]. Chemical Sciences,2014,5: 32-51.
[20] YOUN H K,KIM J,CHANDRASEKAR G,et al. High pressure carbon dioxide adsorption on nanoporous carbons prepared by Zeolite Y templating[J]. Materials Letters,2011,65: 1772-1774.