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首页> 外文期刊>Journal of the Air & Waste Management Association >A comparative study on the chemo-enzymatic upgrading of renewable biomass to 5-Hydroxymethylfurfural
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A comparative study on the chemo-enzymatic upgrading of renewable biomass to 5-Hydroxymethylfurfural

机译:可再生生物质至5-羟甲基糠醛的化学酶促升级的比较研究

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摘要

5-hydroxymethylfurfural (HMF) obtained from renewable biomass-derived carbohydrates is a potential sustainable substitute to petroleum-based building blocks. In the present work, we constituted a comparative study on the production of HMF from two widely available real biomasses in India-Agave americana and Casuarina equisetifolia. In the initial hydrolysis studies for the production of reducing sugars, 649.5 mg/g of fructose was obtained from the hydrolysis of 5% (w/v) A. americana biomass by the enzyme inulinase in 3 h at 50°C. Similarly, upon hydrolysis of 15% (w/v) C equisetifolia biomass by the lignocellulolytic enzymes (laccase, cellulase and xylanase) from Trichoderma atroviride, 456.65 mg/g of reducing sugars was released in 24 h at 30°C. Subsequently, the dehydration of the obtained reducing sugars to HMF was achieved with titanium dioxide as the catalyst. The dehydration of A. americana-derWed fructose at 140°C led to a maximum HMF yield of 92.6% in 15 min with 10% catalyst load. Contrarily, upon optimizing the process parameters for dehydration of C equisetifolia derived reducing sugars, the maximum HMF yield of 85.7% was obtained at 110°C in 25 min with a TiO_2 concentration of 10%. This study reports for the first time the utilization of C equisetifolia biomass for HMF production and thus, by utilizing these inexpensive, abundantly available and highly functionalized polysaccharides, a strategical approach can be developed for the production of fine chemicals, eliminating the need of fossil-based chemicals. Implications: The catalytic upgrading of lignocellulosic biomass into high-valued platform chemicals like 5-Hydroxymethylfurfural (HMF) implies an extremely significant challenge to the attempts of establishing a green economy. Casuarina equisetifolia and Agave americana represents a sustainable feedstock for the production of HMF through catalytic integration. The present work describes a two-step reaction process where the initial depolymerization step comprises of an enzymatic hydrolysis followed by a chemical-catalyst mediated dehydration process. The utilization of a biocatalytic approach followed by mild chemical catalyst eliminates the need of hazardous chemical conversion processes. Thus, the HMF produced via sustainable can bridge the gap between carbohydrate chemistry and petroleum-based industrial chemistry because of the wide range of chemical intermediates and end-products that can be derived from this compound.
机译:从可再生生物质衍生的碳水化合物中获得的5-羟甲基糠醛(HMF)是潜在的可持续替代石油的构建块。在目前的工作中,我们构成了对印度 - 龙舌兰美洲和Casuarina等二种可用生物量的HMF生产的比较研究。在用于生产还原糖的初始水解研究中,通过在50℃的3小时内通过酶氨基硫脲的5%(w / v)A. America生物量的水解得到649.5mg / g果糖。类似地,在水解15%(w / v)C的均衡生物量(Ligncellulolytic酶(漆酶,纤维素酶和木聚糖酶)后,来自Trichoderma atroviride的456.65mg / g还原糖在30℃下在24小时内释放。随后,用二氧化钛作为催化剂实现所得还原糖至HMF的脱水。 140℃的A. Americana-Derwed果糖的脱水导致15分钟的最大HMF产率为92.6%,催化剂载荷10%。相反,在优化C均衡衍生的还原糖的脱水过程参数时,在25分钟内在110℃下获得85.7%的最大HMF产率,TiO_2浓度为10%。本研究报告首次利用C均衡生物量的HMF生产,因此,通过利用这些廉价,丰富的和高官能化多糖,可以为生产精细化学品的生产而开发战略方法,消除了化石的需要 - 基于化学品。含义:木质纤维素生物质催化升级为5-羟甲基糠(HMF)等高值平台化学物质意味着对建立绿色经济的尝试是极大的挑战。 Casuarina Equisetifolia和Agave Americana代表了通过催化整合生产HMF的可持续原料。本作者描述了一种两步反应过程,其中初始解聚步骤包括酶水解,然后进行化学催化剂介导的脱水过程。利用生物催化方法,然后是温和的化学催化剂消除了有害化学转化过程的需要。因此,通过可持续生产的HMF可以弥合碳水化合物化学和基于石油的工业化学之间的间隙,因为各种化学中间体和最终产物可以衍生自该化合物。

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  • 来源
    《Journal of the Air & Waste Management Association》 |2020年第12期|1218-1226|共9页
  • 作者单位

    Integrated Bioprocessing Laboratory Department of Biotechnology School of Bioengineering SRM Institute of Science and Technology Kattankulathur India;

    Integrated Bioprocessing Laboratory Department of Biotechnology School of Bioengineering SRM Institute of Science and Technology Kattankulathur India;

    Integrated Bioprocessing Laboratory Department of Biotechnology School of Bioengineering SRM Institute of Science and Technology Kattankulathur India;

    Integrated Bioprocessing Laboratory Department of Biotechnology School of Bioengineering SRM Institute of Science and Technology Kattankulathur India;

    Integrated Bioprocessing Laboratory Department of Biotechnology School of Bioengineering SRM Institute of Science and Technology Kattankulathur India;

    Integrated Bioprocessing Laboratory Department of Biotechnology School of Bioengineering SRM Institute of Science and Technology Kattankulathur India;

    Integrated Bioprocessing Laboratory Department of Biotechnology School of Bioengineering SRM Institute of Science and Technology Kattankulathur India;

    Integrated Bioprocessing Laboratory Department of Biotechnology School of Bioengineering SRM Institute of Science and Technology Kattankulathur India;

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