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NMR studies of stock process water and reaction pathways in hydrothermal carbonization of furfural residue

机译:糠醛渣水热碳化过程中储备过程水和反应途径的NMR研究

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摘要

Hydrothermal carbonization(HTC) is a valuable approach to convert furfural residue(FR) into carbon material. The prepared biochars are usually characterized comprehensively, while the stock process water still remains to be studied in detail. Herein, a NMR study of the main components in stock process water generated at different HTC reaction conditions was reported. Various qualitative and quantitative NMR techniques(~1H and ^(13)C NMR,~1H-~1H COSY and ~1H-^(13)C HSQC etc.) especially 1D selective gradient total correlation spectroscopy(TOCSY NMR) were strategically applied in the analysis of HTC stock process water. Without separation and purification, it was demonstrated that the main detectable compounds are 5-hydroxymethylfurfural, formic acid, methanol, acetic acid, levulinic acid, glycerol, hydroxyacetone and acetaldehyde in this complicate mixture. Furthermore, the relationship between the concentration of major products and the reaction conditions(180-240 ℃ at 8 h, and 1-24 h at 240 ℃) was established. Finally, reasonable reaction pathways for hydrothermal conversion of FR were proposed based on this result and our previously obtained characteristics of biochars. The routine and challenging NMR methods utilized here would be an alternative other than HPLC or GC for biomass conversion research and can be extended to more studies.

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  • 来源
    《绿色能源与环境(英文)》 |2018年第002期|163-171|共9页
  • 作者单位

    Institute of Coal Chemistry Chinese Academy of Sciences 27 South Taoyuan Road Taiyuan 030001 China;

    Institute of Process Engineering Chinese Academy of Sciences Beijing 100190 China;

    Department of Chemistry University of Copenhagen Universitetsparken 5 DK-2100 Copenhagen Denmark;

    Taiyuan Supervision and Testing Station for Quality of Grain Taiyuan 030013 China;

    Department of Applied Biology and Chemical Technology The Hong Kong Polytechnic University Hung Hom Hong Kong China;

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