Issue 30, 2021

Self-standing, conducting and capacitive biomimetic hybrid nanomembranes for selective molecular ion separation

Abstract

Hybrid free-standing biomimetic materials are developed by integrating the VDAC36 β-barrel protein into robust and flexible three-layered polymer nanomembranes. The first and third layers are prepared by spin-coating a mixture of poly(lactic acid) (PLA) and poly(vinyl alcohol) (PVA). PVA nanofeatures are transformed into controlled nanoperforations by solvent-etching. The two nanoperforated PLA layers are separated by an electroactive layer, which is successfully electropolymerized by introducing a conducting sacrificial substrate under the first PLA nanosheet. Finally, the nanomaterial is consolidated by immobilizing the VDAC36 protein, active as an ion channel, into the nanoperforations of the upper layer. The integration of the protein causes a significant reduction of the material resistance, which decreases from 21.9 to 3.9 kΩ cm2. Electrochemical impedance spectroscopy studies using inorganic ions and molecular metabolites (i.e.L-lysine and ATP) not only reveal that the hybrid films behave as electrochemical supercapacitors but also indicate the most appropriate conditions to obtain selective responses against molecular ions as a function of their charge. The combination of polymers and proteins is promising for the development of new devices for engineering, biotechnological and biomedical applications.

Graphical abstract: Self-standing, conducting and capacitive biomimetic hybrid nanomembranes for selective molecular ion separation

Supplementary files

Article information

Article type
Paper
Submitted
27 Apr 2021
Accepted
05 Jul 2021
First published
05 Jul 2021

Phys. Chem. Chem. Phys., 2021,23, 16157-16164

Self-standing, conducting and capacitive biomimetic hybrid nanomembranes for selective molecular ion separation

A. Puiggalí-Jou, B. G. Molina, M. Lopes-Rodrigues, C. Michaux, E. A. Perpète, D. Zanuy and C. Alemán, Phys. Chem. Chem. Phys., 2021, 23, 16157 DOI: 10.1039/D1CP01840J

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