Unraveling the Potential of a Nanostructured Tungsten–Tungsten Oxide Thin Film Electrode as a Bioresorbable Multichemical Wound Healing Monitor

Author:

Fernandes Catarina1ORCID,Loukopoulos Vasileios1,Smets Jorid2,Franceschini Filippo3,Deschaume Olivier4,Bartic Carmen4,Ameloot Rob2,Ustarroz Jon56,Taurino Irene13

Affiliation:

1. Department of Electrical Engineering (Micro‐and Nano Systems) KU Leuven – University of Leuven Leuven 3001 Belgium

2. Centre for Membrane Separations Adsorption Catalysis and Spectroscopy (cMACS) KU Leuven – University of Leuven Leuven 3001 Belgium

3. Department of Physics and Astronomy (Semiconductor Physics) KU Leuven – University of Leuven Leuven 3001 Belgium

4. Department of Physics and Astronomy (Soft Matter Physics and Biophysics Unit) KU Leuven – University of Leuven Leuven 3001 Belgium

5. Chemistry of Surfaces Interfaces and Nanomaterials (ChemSIN) ULB – Université Libre de Bruxelles Brussels 1050 Belgium

6. SURF‐Research Group Electrochemical and Surface Engineering VUB – Vrije Universiteit Brussel Brussels 1050 Belgium

Abstract

AbstractRecent advancements in wearable technology have led to a new era of intelligent wound dressings capable of monitoring vital healing biomarkers. While a significant leap from traditional gauze dressings, these innovations still necessitate periodic removal and disposal. Bioresorbable electrochemical sensors have emerged as a promising and sustainable solution, offering continuous monitoring of critical wound healing biomarkers in real‐time and in situ, followed by their full physiological resorption. The current challenge lies in the susceptibility of metallic electrodes to harsh electrolytic biofluids, hindering the development of viable transient electrochemical sensors. This study pioneers a bioresorbable electrochemical material and unique architecture comprising engineered sputtered tungsten (W) plus tungsten oxide (WOx) thin films, taking advantage of their high catalytic activity and uniquely gradual biodissolution. While a bare W film electrode detached from the wafer substrate within 5 hours of soaking, an annealed W‐WOx electrode showcases a notable electrochemical stability at body temperature, for up to several days. The latter reliably senses multiple analytes during 24‐hour room‐temperature tests. These findings underscore the potential of annealed W plus WOx electrodes in future bioresorbable wound management systems.

Funder

Fonds Wetenschappelijk Onderzoek

Publisher

Wiley

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