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High-level Computer Molecular Modeling For Low-rank Coal Containing Metal Complexes And Iron-catalyzed Steam Gasification

机译:低等级含煤金属配合物和铁催化蒸汽气化的高级计算机分子建模

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摘要

Low-rank coal is a complex mixture; consequently, it is necessary to develop simpler molecular representations for computational modeling. Our modeling objective has been to develop molecules suitable for semi-empirical (SE) computations of low-rank coal containing transition-metal complexes. These molecular models contain oxygen functional groups that are macro-ligands, forming coordination complexes with specific three-dimentional (3D) orientations; consequently, we develop models that encapsulate the properties of low-rank coals and can form metal complexes. The large computer resources required for SE calculations of these molecules limited their size; of the models examined, those containing numerous short links between phenyl groups caused excessive strain and were unsuitable to model transition-metal complexes. Computations (SE) of our models provided data on (i) hydrogen bonds of coal containing water, (ii) formation of aqua-inorganic species and transition-metal complexes, (iii) pyrolysis chemistry involving transformations of metal hydroxide/oxides, (iv) routes for H_2 and CO formation, and (v) mechanism of iron-catalyzed steam gasification. Our char models, on the basis of transformations of the coal model, were consistent with low-temperature pyrolysis; these were disordered structures with some phenyl groups spaced between 0.35 and 0.4 nm. Smaller models of char and chars containing transition-metal clusters were optimized with SE and density functional theory (DFT) computations; these models were useful in modeling the mechanism of catalytic steam gasification. Our modeling of the mechanisms of iron-catalyzed steam gasification was consistent with experimental data.
机译:低等级煤是一种复杂的混合物。因此,有必要为计算建模开发更简单的分子表示形式。我们的建模目标是开发适用于含过渡金属配合物的低秩煤的半经验(SE)计算的分子。这些分子模型包含的氧官能团是大分子配体,形成具有特定三维(3D)方向的配位配合物。因此,我们开发了包含低阶煤特性并可以形成金属配合物的模型。这些分子的SE计算所需的大量计算机资源限制了它们的大小。在所研究的模型中,那些在苯基之间包含许多短链的模型会导致过度应变,因此不适合用于建模过渡金属配合物。我们模型的计算(SE)提供了以下数据:(i)含煤水的氢键;(ii)水性无机物和过渡金属配合物的形成;(iii)涉及金属氢氧化物/氧化物转化的热解化学;(iv )形成H_2和CO的途径,以及(v)铁催化蒸汽气化的机理。基于煤模型的转换,我们的炭模型与低温热解相符。这些是无序结构,其中一些苯基间隔在0.35至0.4 nm之间。使用SE和密度泛函理论(DFT)计算优化了较小的char和包含过渡金属簇的chars模型;这些模型可用于模拟催化蒸汽气化的机理。我们对铁催化蒸汽气化机理的建模与实验数据一致。

著录项

  • 来源
    《Energy & fuels》 |2008年第6期|p.3994-4005|共12页
  • 作者

    G; Domazetis; B; D; James; J; Liesegang;

  • 作者单位

    Physics and Chemistry Departments, La Trobe University, Melbourne, Victoria, 3086, Australia;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 TK-;
  • 关键词

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