| Literature DB >> 34206178 |
Anna Szelwicka1, Anna Wolny1, Miroslawa Grymel2, Sebastian Jurczyk3, Slawomir Boncel2, Anna Chrobok1.
Abstract
A novel method for chemo-enzymatic Baeyer-Villiger oxidation of cyclic ketones in the presence of supported ionic liquid-like phase biocatalyst was designed. In this work, multi-walled carbon nanotubes were applied as a support for ionic liquids which were anchored to nanotubes covalently by amide or imine bonds. Next, lipases B from Candida antarctica, Candida rugosa, or Aspergillus oryzae were immobilized on the prepared materials. The biocatalysts were characterized using various techniques, like thermogravimetry, IR spectroscopy, XPS, elemental analysis, and SEM-EDS microscopy. In the proposed approach, a biocatalyst consisting of a lipase as an active phase allowed the generation of peracid in situ from the corresponding precursor and a green oxidant-hydrogen peroxide. The activity and stability of the obtained biocatalysts in the model oxidation of 2-adamantanone were demonstrated. High conversion of substrate (92%) was achieved under favorable conditions (toluene: n-octanoic acid ratio 1:1 = v:v, 35% aq. H2O2 2 eq., 0.080 g of biocatalyst per 1 mmol of ketone at 20 °C, reaction time 4 h) with four reaction cycles without a drop in its activity. Our 'properties-by-design' approach is distinguished by its short reaction time at low temperature and higher thermal stability in comparison with other biocatalysts presented in the literature reports.Entities:
Keywords: biocatalysis; carbon nanotubes; chemo-enzymatic Baeyer–Villiger oxidation; heterogeneous catalysis; immobilization; lipase; supported ionic liquid phase
Year: 2021 PMID: 34206178 DOI: 10.3390/ma14133443
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623