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Improved Analytical Methods for Carbohydrate Analysis in Biofuel Research.

机译:生物燃料研究中碳水化合物分析的改进分析方法。

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摘要

Essential for continued growth of the biofuels industry is the need for continued development of rapid, robust, and accurate carbohydrate quantitation methods. As new feedstocks are identified and developed, understanding how to optimize the total amount of energy obtainable will be of primary consideration for biorefineries. Conditions needed to obtain the optimal energy yield will require the testing and monitoring of different chemical and biological treatment technologies. Monitoring of carbohydrates, specifically monosaccharides and sucrose, is required to evaluate the effectiveness of the applied bioprocessing conditions. However, due to the increasing number of possible treatment technologies and potential combinations, the number of samples to be analyzed for optimization becomes the rate limiting step. Therefore rapid, accurate, and robust analytical methods for carbohydrate analysis are critical for researchers as they investigate potential feedstocks.;Currently, high performance liquid chromatography with refractive index detection (HPLC-RI) and a ligand-exchange column is the standard method the biofuels industry utilizes for interrogation of carbohydrates in research samples. Overall, the HPLC-RI methods have proven to be both robust and easy to use, providing a large detection range and requiring little to no sample dilution. However, the caveats of this approach include long analysis times (45 - 60 minutes), limited resolution of select carbohydrates and an inability to separate sucrose from cellobiose. In addition, the use of a universal detector creates the possibility of false positives due to interferences caused by co-eluting compounds.;An alternative method is the application of high-performance anion-exchange chromatography with pulsed amperometric detection (HPAE-PAD) for carbohydrate analysis. The primary advantage of the HPAE-PAD approach is the selectivity of PAD for carbohydrates, while a reduction of analysis time is also feasible. A series of experiments was conducted to improve the resolution of monosaccharides and sucrose while reducing analysis time. Initial experiments utilized the addition of carbonate to a commercially available column to improve analyte resolution and reduce overall analysis time to ~5 min and employed for the analysis of several sorghum types and process streams. Additionally, a commercially produced column, inspired by the carbonate-modified column was tested in an interlaboratory collaboration involving government, industry, and academic labs.
机译:对于生物燃料工业的持续增长必不可少的是,需要持续发展快速,稳定和准确的碳水化合物定量方法。随着新原料的发现和开发,了解如何优化可获取的能源总量将是生物炼油厂的主要考虑因素。要获得最佳的能源产量,需要的条件将要求测试和监视不同的化学和生物处理技术。需要监测碳水化合物,特别是单糖和蔗糖,以评估所应用生物加工条件的有效性。但是,由于可能的处理技术和潜在组合的数量不断增加,要进行优化分析的样本数量成为速率限制步骤。因此,对于碳水化合物分析而言,快速,准确和稳健的分析方法对于研究人员研究潜在的原料至关重要。当前,具有折光指数检测(HPLC-RI)和配体交换柱的高效液相色谱法是生物燃料的标准方法工业用于研究样品中的碳水化合物。总体而言,HPLC-RI方法已被证明既稳健又易于使用,提供了较大的检测范围,并且几乎不需要稀释样品。但是,这种方法的注意事项包括分析时间长(45-60分钟),有限的碳水化合物分辨率有限以及无法从纤维二糖中分离蔗糖。此外,使用通用检测器还可能导致由于共洗脱化合物引起的干扰而导致假阳性的可能性。;另一种方法是将高性能阴离子交换色谱与脉冲安培检测(HPAE-PAD)结合使用碳水化合物分析。 HPAE-PAD方法的主要优点是PAD对碳水化合物的选择性,同时减少分析时间也是可行的。进行了一系列实验以提高单糖和蔗糖的分离度,同时减少分析时间。最初的实验利用向市售色谱柱中添加碳酸盐来提高分析物的分离度,并将总分析时间减少至〜5分钟,并用于分析几种高粱类型和工艺物流。此外,在涉及政府,行业和学术实验室的实验室间合作中,对受碳酸盐改性色谱柱启发的商业生产色谱柱进行了测试。

著录项

  • 作者

    Sevcik, Richard Scott.;

  • 作者单位

    Baylor University.;

  • 授予单位 Baylor University.;
  • 学科 Alternative Energy.;Chemistry Analytical.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 118 p.
  • 总页数 118
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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