Journal of Chemical Technology & Biotechnology | 2019

Surface treatments and functionalization of metal‐ceramic membranes for improved enzyme immobilization performance

 
 
 
 
 
 
 
 
 

Abstract


BACKGROUND: Enzyme immobilization in porous membranes often improves enzyme performance. This work reports the preparation and characterization of robust and scalable asymmetric metal‐ceramic microfiltration membrane. The surface of the porous metal‐ceramic membrane was treated by impregnation with a ceramic oxide for enzyme adsorption and corrosion protection. Finally, enzyme immobilization in the support was investigated. RESULTS: The bilayer membrane was successfully fabricated by combining a ceramic microfiltration layer with a metal support by tape casting, lamination and co‐sintering. A pore size in the ceramic microfiltration layer of 0.4\xa0μm resulted in high water permeability (12\u2009000\u2009L/(m²\xa0h\xa0bar)). Two different surface treatments were compared: heat treatment and yttrium(III) oxide (Y₂O₃) impregnation. Corrosion stability tests under enzyme‐relevant conditions gave no detectable chemical or structural changes. Alcohol dehydrogenase (EC 1.1.1.1) was immobilized in the membrane by physical adsorption and by two covalent immobilization methods. Covalent immobilization significantly improved enzyme loading, activity, and recyclability. Membrane reuse by heat treatment removed fouling, but decreased immobilization performance. CONCLUSION: The improved microstructure obtained by Y₂O₃‐impregnation had a significant effect on enzyme loading yield and activity. This indicates the potential of this surface modification method and of these metal‐supported ceramic membranes in enzyme immobilization. Covalent immobilization was superior. © 2019 Society of Chemical Industry

Volume 95
Pages 993-1007
DOI 10.1002/jctb.6278
Language English
Journal Journal of Chemical Technology & Biotechnology

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