Article ID Journal Published Year Pages File Type
74553 Microporous and Mesoporous Materials 2012 9 Pages PDF
Abstract

Lipase from Thermomyces lanuginosus has been immobilized in different mesoporous organosilicas (PMOs) containing ethane and benzene groups with large cage-like pores. The immobilization of lipase as well as the application of these catalysts in hydrolysis and transesterification reactions is studied in detail. The results show that the structural properties of the support employed have a significant influence on the adsorption capacity. In general, materials with high specific surface areas and pore volumes show high adsorption capacity. However, in the case of monolayer adsorption, the hydrophobicity of the surface has a significant impact on the adsorption efficiency due to strong hydrophobic interactions. Furthermore, the transesterification of vinyl propionate with 1-butanol catalyzed by immobilized lipase was studied. The influence of lipase loading, the effect of water content in the reaction mixture and the influence of different solvents were investigated. The results show that lipase immobilized in the most hydrophobic material (LPbenzene) exhibits excellent catalytic performance, which is attributed to the enhanced interfacial activity of lipase due to the interaction between lipase and the hydrophobic surface of the material. In order to further disclose the influence of the hydrophobic surface on the lipase activity, ATR-FTIR spectroscopy was used to study the secondary structure of lipase immobilized on different supports. The results confirm that a structural transition of entrapped lipase to the open-lid conformation takes place on LPbenzene, which shows that the observed increase in enzymatic activity is triggered by interfacial activation of lipase.

Graphical abstractFigure optionsDownload full-size imageDownload as PowerPoint slideHighlights► Novel large pore cage-type POMs with hydrophobic surface have been prepared. ► Lipase immobilization is efficient and fast depending on properties of the support. ► Lipase on benzene-containing PMO is highly active and stable in transesterification. ► The activity and stability is better compared to free lipase and lipase on silica.

Related Topics
Physical Sciences and Engineering Chemical Engineering Catalysis
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