Magnesium Test: Universal and Ultra‐Sensitive Method for Measuring Reliability of Thin‐Film‐Encapsulated Bioelectronic Implants in Physiological Environment

Author:

Mariello Massimo12ORCID,Ayama Kosuke3,Wu Kangling1ORCID,Baudino Costanza3,Wang Lei3,Mutschler Léo3,Jourdan Lucas Aurélien3,Cleusix Marion Bianca3,Furfaro Ivan1ORCID,Kathe Claudia45ORCID,Courtine Grégoire4567,von Allmen Marion8,Van Gompel Matthias8ORCID,Leterrier Yves2ORCID,Lacour Stéphanie P.1ORCID

Affiliation:

1. École Polytechnique Fédérale de Lausanne School of Engineering Neuro‐X Institute Geneva CH‐1202 Switzerland

2. Laboratory for Processing of Advanced Composites (LPAC) École Polytechnique Fédérale de Lausanne (EPFL) Lausanne CH‐1005 Switzerland

3. École Polytechnique Fédérale de Lausanne (EPFL) Lausanne CH‐1005 Switzerland

4. École Polytechnique Fédérale de Lausanne School of Life Sciences Neuro‐X Institute Geneva CH‐1202 Switzerland

5. Defitech Center for Interventional Neurotherapies (NeuroRestore) University Hospital Lausanne (CHUV) University of Lausanne and EPFL Lausanne CH‐1011 Switzerland

6. Department of Clinical Neurosciences Lausanne University Hospital (CHUV) and University of Lausanne (UNIL) Lausanne CH‐1011 Switzerland

7. Department of Neurosurgery CHUV Lausanne CH‐1011 Switzerland

8. Comelec SA La‐Chaux‐de‐Fonds 2300 Switzerland

Abstract

AbstractNext‐generation bioelectronic implants require miniaturization, durability, and long‐term functionality. Thin film encapsulations, prepared with inorganic or hybrid organic/inorganic designs, are essential for ensuring protection, low water permeation, adaptability, and structural strength. It is equally important to precisely measure their barrier performance, especially for in vivo use, to ensure the manufacture of reliable bioelectronics. Current monitoring solutions are not adequate: they are bulky, lack sensitivity, and are incompatible with microfabricated devices. Here, a comprehensive method is introduced to quantify the permeability of thin‐film encapsulation for bioelectronic implants both in situ and in real time. This method relies on monitoring the electrical resistance of the Mg film, which experiences corrosion due to water permeation, leading to Mg hydrolysis. An analytical model is proposed that predicts and quantifies this permeation, and is adaptable for various types of encapsulations, including hybrid multilayers. An unprecedented ultra‐low detection limit of 3 × 10−8 g m−2 d−1 at room temperature is demonstrated and the monitoring approach is validated in vivo using polyimide and poly(dimethylsiloxane)‐coated bioelectronics.

Funder

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

Innosuisse - Schweizerische Agentur für Innovationsförderung

Publisher

Wiley

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