Microporous activated carbon aerogels via a simple subcritical drying route for CO2 capture and hydrogen storage

被引:119
作者
Robertson, Calum [1 ]
Mokaya, Robert [1 ]
机构
[1] Univ Nottingham, Sch Chem, Nottingham NG7 2RD, England
关键词
Activated carbon aerogel; Subcritical drying; Microporous; CO2; capture; Hydrogen storage; HIGH-SURFACE-AREA; ZEOLITE-TEMPLATED CARBONS; ORGANIC AEROGELS; POROUS CARBONS; GAS-STORAGE; CAPACITY; ADSORPTION; RESORCINOL; NANOCAST; SIZE;
D O I
10.1016/j.micromeso.2013.05.025
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
The successful synthesis of carbon aerogels, via a simple subcritical drying route and subsequent activation to high surface area carbons with attractive properties for gas storage is demonstrated. The route generates highly microporous carbon aerogel with a surface area of 508 m(2)/g and pore volume of 0.68 cm(3)/g wherein micropores account for 80% (407 m(2)/g) of surface area. The carbon aerogel is dominated by micropores of size <15 angstrom with a broad distribution of pores centered at 8 and 12 angstrom. Chemical activation of the carbon aerogel with KOH generates activated carbon aerogels with surface area of 915-1980 m(2)/g and pore volume up to 2.03 cm(3)/g. Activation at 600,700 or 800 degrees C (and KOH carbon ratio of 2, 4 or 5) yields activated carbon aerogels with micropore size distribution centred at ca. 8 and 13 angstrom (i.e., similar to that of the starting carbon aerogel) but with a large increase in pore volume arising from the micropores with the effect that pores of size <15 angstrom already present in the starting CA aerogel are retained and enhanced in the activated carbon aerogels; the proportion of microporosity rises from 80% to 87%. The activated carbon aerogels exhibit high CO2 uptake of 2.7-3.0 mmol/g at 25 degrees C and 1 bar, and store between 3.5 and 4.3 wt% hydrogen at -196 degrees C and 20 bar. The hydrogen storage density of the carbons is high (up to 16.2 mu mol H-2 m(-2)) with small micropores favouring high density. (C) 2013 Elsevier Inc. All rights reserved.
引用
收藏
页码:151 / 156
页数:6
相关论文
共 72 条
[51]   Black perspectives for a green future: hydrothermal carbons for environment protection and energy storage [J].
Titirici, Maria-Magdalena ;
White, Robin. J. ;
Falco, Camillo ;
Sevilla, Marta .
ENERGY & ENVIRONMENTAL SCIENCE, 2012, 5 (05) :6796-6822
[52]   Materials for hydrogen storage:: current research trends and perspectives [J].
van den Berg, Annemieke W. C. ;
Arean, Carlos Otero .
CHEMICAL COMMUNICATIONS, 2008, (06) :668-681
[53]  
Vimlesh C., 2012, CHEM COMMUN, V48, P735
[54]   High-Surface-Area Carbon Molecular Sieves for Selective CO2 Adsorption [J].
Wahby, Anass ;
Ramos-Fernandez, Jose M. ;
Martinez-Escandell, Manuel ;
Sepulveda-Escribano, Antonio ;
Silvestre-Albero, Joaquin ;
Rodriguez-Reinoso, Francisco .
CHEMSUSCHEM, 2010, 3 (08) :974-981
[55]   High Hydrogen Storage Capacity of Porous Carbons Prepared by Using Activated Carbon [J].
Wang, Huanlei ;
Gao, Qiuming ;
Hu, Juan .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2009, 131 (20) :7016-7022
[56]   CO2 capture by solid adsorbents and their applications: current status and new trends [J].
Wang, Qiang ;
Luo, Jizhong ;
Zhong, Ziyi ;
Borgna, Armando .
ENERGY & ENVIRONMENTAL SCIENCE, 2011, 4 (01) :42-55
[57]   Granular Bamboo-Derived Activated Carbon for High CO2 Adsorption: The Dominant Role of Narrow Micropores [J].
Wei, Haoran ;
Deng, Shubo ;
Hu, Bingyin ;
Chen, Zhenhe ;
Wang, Bin ;
Huang, Jun ;
Yu, Gang .
CHEMSUSCHEM, 2012, 5 (12) :2354-2360
[58]   Preparation of low-density carbon aerogels by ambient pressure drying [J].
Wu, DC ;
Fu, RW ;
Zhang, ST ;
Dresselhaus, MS ;
Dresselhaus, G .
CARBON, 2004, 42 (10) :2033-2039
[59]   Activation, characterization and hydrogen storage properties of the mesoporous carbon CMK-3 [J].
Xia, Kaisheng ;
Gao, Qiuming ;
Wu, Chundong ;
Song, Shuqing ;
Ruan, Meiling .
CARBON, 2007, 45 (10) :1989-1996
[60]   Superior CO2 Adsorption Capacity on N-doped, High-Surface-Area, Microporous Carbons Templated from Zeolite [J].
Xia, Yongde ;
Mokaya, Robert ;
Walker, Gavin S. ;
Zhu, Yanqiu .
ADVANCED ENERGY MATERIALS, 2011, 1 (04) :678-683