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  4. CO2-intensified Hydrolysis of Rutin to Quercetin - A Comparison of Experimental Data and modelled Reaction Kinetics
 
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2017
Journal Article
Title

CO2-intensified Hydrolysis of Rutin to Quercetin - A Comparison of Experimental Data and modelled Reaction Kinetics

Abstract
This work describes the possibility to hydrolyze rutin (quercetin-3-O-rutinoside) to quercetin using carbon dioxide (CO2) and water without the addition of acids or enzymes. Eight hours of CO2-intensified hydrolysis of aqueous rutin-solutions were carried out to investigate temperature (373.15 K-433.15 K) and pressure dependence (4-150 bar). Both temperature and CO2-pressure dependence are studied. The parameter combination of 413.15 K and 150 bar gave a complete (100 %) conversion of rutin to quercetin. Temperature and pressure dependence were modelled. Models achieved correlation coefficients between R2 = 0.85 and 0.99. Influence of H+ ions was described by implementing the »H+-factor« to explain the hydrolysis effect of CO2-pressure in more detail. The results of this work demonstrate that CO2-intensified hydrolysis is possible at moderate temperatures and pressures.
Author(s)
Maier, Markus
Fraunhofer-Institut für Umwelt-, Sicherheits- und Energietechnik UMSICHT  
Oelbermann, Anna Luisa  
Fraunhofer-Institut für Umwelt-, Sicherheits- und Energietechnik UMSICHT  
Weidner, Brigitte
Ruhr-Universität Bochhum
Möhle, Edda  
Fraunhofer-Institut für Umwelt-, Sicherheits- und Energietechnik UMSICHT  
Renner, Manfred  
Fraunhofer-Institut für Umwelt-, Sicherheits- und Energietechnik UMSICHT  
Weidner, Eckhard  
Fraunhofer-Institut für Umwelt-, Sicherheits- und Energietechnik UMSICHT  
Journal
Journal of CO2 Utilization  
DOI
10.1016/j.jcou.2017.05.027
Language
English
Fraunhofer-Institut für Umwelt-, Sicherheits- und Energietechnik UMSICHT  
Keyword(s)
  • CO2

  • hydrolysis

  • glycosidic bond

  • rutin

  • quercetin

  • reaction kinetic model

  • H+-factor

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