A DFT study of interaction of carbon monoxide with carbonaceous materials

被引:75
作者
Espinal, JF
Montoya, A
Mondragón, F
Truong, TN
机构
[1] Univ Antioquia, Inst Chem, Medellin 1226, Colombia
[2] Univ Utah, Henry Eyring Ctr Theoret Chem, Dept Chem, Salt Lake City, UT 84112 USA
关键词
D O I
10.1021/jp0308211
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
Reaction of CO with carbonaceous surfaces was investigated using B3LYP density functional theory level (DFT) with the 6-31 G(d) basis set. It was found that CO can be adsorbed exothermically on the active sites of zigzag, armchair, and tip carbonaceous models to yield stable intermediates such as cyclic ether, carbonyl, lactone, ketone, carbonate, and semquitione functionalities. The above reactions are important in carbon gasification processes as well as in carbon single-wall nanotubes formation from CO disproportionation reaction. In the case of gasification, adsorption of CO blocks the active sites of the carbonaceous material and thus can reduce the efficiency of the process. Furthermore, it was found that when CO is adsorbed in a carbonyl type structure (C=C=O), there is a reversible interconversion process by ring closure with a neighbor active site to produce a cyclic ether (furan type), a process that requires an additional neighboring active site. Consequently, the available number of active sites for gasification reaction is decreased and therefore the gasification reaction is inhibited. In addition, CO adsorption on oxidized surfaces can favor CO2 desorption. Such desorption can be either taking off an oxygen atom that potentially was going to be desorbed as CO or depositing a carbon atom on the surface due to the disproportionation reaction 2 CO = C + CO2. Both effects can inhibit or retard the gasification process. The results from the disproportionation reaction can also provide an insight into the mechanism for carbon single-wall nanotubes growth using CO as precursor.
引用
收藏
页码:1003 / 1008
页数:6
相关论文
共 36 条
  • [1] ADSORPTION OF CARBON-MONOXIDE AND HYDROGEN ON GRAPHITE
    BEITEL, GA
    [J]. JOURNAL OF VACUUM SCIENCE & TECHNOLOGY, 1972, 9 (01): : 370 - &
  • [2] Gas-phase production of carbon single-walled nanotubes from carbon monoxide via the HiPco process: A parametric study
    Bronikowski, MJ
    Willis, PA
    Colbert, DT
    Smith, KA
    Smalley, RE
    [J]. JOURNAL OF VACUUM SCIENCE & TECHNOLOGY A, 2001, 19 (04): : 1800 - 1805
  • [3] INTERACTION OF CO WITH CARBON AND CARBON SURFACE OXIDES
    BROWN, TC
    HAYNES, BS
    [J]. ENERGY & FUELS, 1992, 6 (02) : 154 - 159
  • [4] CALO JM, 1991, NATO ADV SCI I E-APP, V192, P329
  • [5] Ab initio molecular orbital calculation on graphite: Selection of molecular system and model chemistry
    Chen, N
    Yang, RT
    [J]. CARBON, 1998, 36 (7-8) : 1061 - 1070
  • [6] Purification and characterization of single-wall carbon nanotubes (SWNTs) obtained from the gas-phase decomposition of CO (HiPco process)
    Chiang, IW
    Brinson, BE
    Huang, AY
    Willis, PA
    Bronikowski, MJ
    Margrave, JL
    Smalley, RE
    Hauge, RH
    [J]. JOURNAL OF PHYSICAL CHEMISTRY B, 2001, 105 (35) : 8297 - 8301
  • [7] COPESTAKE TB, 1959, J APPL CHEM-USSR, V9, P74
  • [8] Single-wall nanotubes produced by metal-catalyzed disproportionation of carbon monoxide
    Dal, HJ
    Rinzler, AG
    Nikolaev, P
    Thess, A
    Colbert, DT
    Smalley, RE
    [J]. CHEMICAL PHYSICS LETTERS, 1996, 260 (3-4) : 471 - 475
  • [9] KINETIC MEASUREMENT AND MODELING OF CARBON OXIDATION
    DU, ZY
    SAROFIM, AF
    LONGWELL, JP
    MIMS, CA
    [J]. ENERGY & FUELS, 1991, 5 (01) : 214 - 221
  • [10] MECHANICAL-PROPERTIES OF FORMCOKE AFTER REACTION IN CO2 AND CO/CO2 ENVIRONMENTS
    EASLER, TE
    BRADT, RC
    WALKER, PL
    [J]. CARBON, 1991, 29 (08) : 1125 - 1134