Defining a performance map of porous carbon sorbents for high-pressure carbon dioxide uptake and carbon dioxide-methane selectivity

被引:33
|
作者
Ghosh, Saunab [1 ]
Sevilla, Marta [2 ]
Fuertes, Antonio B. [2 ]
Andreoli, Enrico [3 ]
Ho, Jason [4 ]
Barron, Andrew R. [1 ,3 ,5 ]
机构
[1] Rice Univ, Dept Chem, Houston, TX 77007 USA
[2] CSIC, Inst Nacl Carbon, POB 73, E-33080 Oviedo, Spain
[3] Swansea Univ, Energy Safety Res Inst, Bay Campus, Swansea SA1 8EN, W Glam, Wales
[4] Apache Corp, 2000 Post Oak Blvd, Houston, TX 77056 USA
[5] Rice Univ, Dept Mat Sci & Nanoengn, Houston, TX 77007 USA
关键词
HIGH-SURFACE-AREA; CO2; CAPTURE; NATURAL-GAS; ADSORPTION; ACTIVATION; STORAGE; TECHNOLOGY; CAPACITY; NITROGEN; REMOVAL;
D O I
10.1039/c6ta04936b
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
The relative influence of heteroatomdoping, surface area, and total pore volume of highlymicroporous carbon materials on CO2 uptake capacity, and the CO2/CH4 selectivity, at high pressure (<= 30 bar) is presented. The separation of CO2 from natural gas (natural gas sweetening) is an important application that requires high CO2 uptake in combination with high CO2/CH4 selectivity. Porous carbon (PC), N-doped PC (NPC), and S-doped PC (SPC) materials are prepared using KOH oxidative activation at different temperatures. The surface chemical composition was determined by XPS, while the surface areas, total pore volume, and pore size distributions were obtained by analyzing N-2 adsorption-desorption isotherms with support from SEM and TEM. The CO2 and CH4 uptake was determined by volumetric uptake measurements (sorption and desorption). Contrary to previous proposals that N- or S-doping results in high uptake and good selectivity, we show it is the Sigma(O, N, S) wt% that is the defining factor for CO2 uptake, of which O appears to be the main factor. Based upon the data analyzed, a performance map has been defined as a guide to designing/choosing materials for both future studies and large scale fluid bed applications using pelletized materials. For CO2 uptake at 30 bar any material with a surface area >2800 m(2) g(-1) and a total pore volume >1.35 cm(3) g(-1) is unlikely to be bettered. Such a material is best prepared by thermal activation between 700-800 degrees C and will have a carbon content of 80-95 wt% (as determined by XPS). While it has been assumed that the parameters that make a good CO2 adsorbent are the same as those that make a material with high CO2/CH4 selectivity, our results indicate instead that for the best selectivity at 30 bar a surface area >2000 m(2) g(-1) and a total pore volume >1.0 cm(3) g(-1) and a carbon content of <90 wt% are necessary.
引用
收藏
页码:14739 / 14751
页数:13
相关论文
共 50 条
  • [21] Sterilization using high-pressure carbon dioxide
    Zhang, Jian
    Davis, Thomas A.
    Matthews, Michael A.
    Drews, Michael J.
    LaBerge, Martine
    An, Yuehuei H.
    JOURNAL OF SUPERCRITICAL FLUIDS, 2006, 38 (03): : 354 - 372
  • [22] High-pressure polymeric phases of carbon dioxide
    Sun, Jian
    Klug, Dennis D.
    Martonak, Roman
    Montoya, Javier Antonio
    Lee, Mal-Soon
    Scandolo, Sandro
    Tosatti, Erio
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2009, 106 (15) : 6077 - 6081
  • [23] High-Pressure Methane, Carbon Dioxide, and Nitrogen Adsorption on Amine-Impregnated Porous Montmorillonite Nanoclays
    Atilhan, Mert
    Atilhan, Selma
    Ullah, Ruh
    Anaya, Baraa
    Cagin, Tahir
    Yavuz, Cafer T.
    Aparicio, Santiago
    JOURNAL OF CHEMICAL AND ENGINEERING DATA, 2016, 61 (08): : 2749 - 2760
  • [24] High-pressure adsorption equilibria of methane and carbon dioxide on several activated carbons
    Himeno, S
    Komatsu, T
    Fujita, S
    JOURNAL OF CHEMICAL AND ENGINEERING DATA, 2005, 50 (02): : 369 - 376
  • [25] HIGH-PRESSURE ADSORPTION OF METHANE, NITROGEN AND CARBON-DIOXIDE ON COAL SUBSTRATES
    DEGANCE, AE
    MORGAN, WD
    YEE, D
    FLUID PHASE EQUILIBRIA, 1993, 82 : 215 - 224
  • [26] Performance of dry water- and porous carbon-based sorbents for carbon dioxide capture
    Al-Wabel, Mohammad
    Elfaki, Jamal
    Usman, Adel
    Hussain, Qaiser
    Ok, Yong Sik
    ENVIRONMENTAL RESEARCH, 2019, 174 : 69 - 79
  • [27] High-pressure carbon dioxide uptake for porous organic cages: comparison of spectroscopic and manometric measurement techniques
    Hasell, Tom
    Armstrong, Jayne A.
    Jelfs, Kim E.
    Tay, Feng H.
    Thomas, K. Mark
    Kazarian, Sergei G.
    Cooper, Andrew I.
    CHEMICAL COMMUNICATIONS, 2013, 49 (82) : 9410 - 9412
  • [28] Carbon Dioxide Separation from Carbon Dioxide-Methane Gas Mixture using PSA Utilizing Inorganic and Organic Adsorbents
    Abdullah, A.
    Idris, I.
    Shamsudin, I. K.
    Kim, J.
    Othman, M. R.
    6TH INTERNATIONAL CONFERENCE ON ENVIRONMENT (ICENV 2018): EMPOWERING ENVIRONMENT AND SUSTAINABLE ENGINEERING NEXUS THROUGH GREEN TECHNOLOGY, 2019, 2124
  • [29] EXPERIMENTAL HEAT CAPACITIES OF CARBON DIOXIDE-METHANE MIXTURES AT ELEVATED PRESSURES
    BISHNOI, PR
    ROBINSON, DB
    CANADIAN JOURNAL OF CHEMICAL ENGINEERING, 1971, 49 (05): : 657 - &
  • [30] High-pressure phase equilibria for the carbon dioxide plus methanol and carbon dioxide plus isopropanol systems
    Secuianu, C
    Feroiu, V
    Geana, D
    REVISTA DE CHIMIE, 2003, 54 (11): : 874 - 879