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Bio-mass for biomass: Biological mass spectrometry techniques for biomass fast pyrolysis oils.

机译:生物质的生物质:生物质快速热解油的生物质谱技术。

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摘要

Biomass fast pyrolysis oils, or bio-oils, are a promising renewable energy source to supplement or replace petroleum-based products and fuels. However, there is a current lack of understanding about the pyrolysis process which creates a bottleneck towards making biomass pyrolysis an economically feasible option. In order to address this bottleneck, this research focuses on developing high resolution mass spectrometry (HRMS) techniques to address biomass pyrolysis at the molecular-level.;The first attempt at analyzing bio-oils with HRMS employs laser desorption ionization and LTQ-Orbitrap MS to successful identify over 100 compounds. These compounds consist of 3-6 oxygens and have double-bond equivalents (DBE) of 9-17. A petroleomic analysis and comparison of the bio-oil to the low-mass components in hydrolytic lignin suggest that these compounds are dimers and trimers of depolymerized lignin. A wider variety of bio-oil compounds, specifically volatile and non-volatile compounds, could be characterized with electrospray ionization (ESI). Specifically, (-) ESI allows for the characterization of over 800 molecular compounds, of which about 40 of these were previously known in GC-MS. These compounds include cellulose- and hemicellulose-derived pyrolysis products as well as lignin-derived pyrolysis products. A comparative study of three common HRMS was also performed to validate the methodology and to investigate differences in mass discrimination and resolution. This led to the development of a novel spectral stitching technique that combines datasets from different HRMS together. By stitching the datasets together inherent instrument limitations (e.g. like mass discrimination and resolution) can be addressed. The resulting stitched mass spectrum gives rise to a more comprehensive picture of bio-oil.;Lastly, a pioneering technique that utilizes HRMS to monitor biomass fast pyrolysis in real-time has been developed. A fast-scanning time-of-flight mass spectrometer with a soft ionization source and a drop-in micropyrolyzer is used to provide insights into biomass pyrolysis that are not possible with traditional techniques. For example, metastable intermediates of cellulose pyrolysis could be identified and monitored with this novel approach. Also, fundamental pyrolysis studies, such as the effect of biomass shape and thickness, are possible with this technique due to the high sensitivity and time resolution of the time-of-flight mass spectrometer.
机译:生物质快速热解油或生物油是一种有前途的可再生能源,可以补充或替代石油基产品和燃料。然而,目前缺乏对热解过程的理解,这导致了使生物质热解成为经济上可行的选择的瓶颈。为了解决这个瓶颈,本研究着重于开发高分辨率质谱技术(HRMS),以解决分子水平上的生物质热解问题。首次尝试使用HRMS分析生物油的方法是采用激光解吸电离和LTQ-Orbitrap MS成功鉴定出100多种化合物。这些化合物由3-6个氧组成,双键当量(DBE)为9-17。对生物油与水解木质素中低质量成分进行的石油学分析和比较表明,这些化合物是解聚木质素的二聚体和三聚体。电喷雾电离(ESI)可以表征多种生物油化合物,尤其是挥发性和非挥发性化合物。具体来说,(-)ESI可以表征800多种分子化合物,其中约40种以前在GC-MS中是已知的。这些化合物包括纤维素和半纤维素衍生的热解产物以及木质素衍生的热解产物。还对三种常见的HRMS进行了比较研究,以验证方法论并调查质量歧视和分辨率的差异。这导致了一种新颖的光谱拼接技术的发展,该技术将来自不同HRMS的数据集组合在一起。通过将数据集缝合在一起,可以解决仪器固有的局限性(例如质量判别和分辨率)。产生的缝合质谱图提供了更全面的生物油图像。;最后,开发了一种利用HRMS实时监测生物质快速热解的开创性技术。具有软电离源和嵌入式微热解器的快速扫描飞行时间质谱仪用于提供对传统技术无法实现的生物质热解的见解。例如,可以用这种新方法鉴定和监测纤维素热解的亚稳中间体。而且,由于飞行时间质谱仪的高灵敏度和时间分辨率,使用这种技术可以进行基本的热解研究,例如生物质形状和厚度的影响。

著录项

  • 作者

    Dalluge, Erica A.;

  • 作者单位

    Iowa State University.;

  • 授予单位 Iowa State University.;
  • 学科 Chemistry Analytical.;Alternative Energy.;Engineering Chemical.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 148 p.
  • 总页数 148
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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