Ramesh, Vaijayanthi; Stratmann, Nadine; Schaufler, Viktor; Angelov, Svilen D.; Nordhorn, Ilona D.; Heissler, Hans E.; Martínez-Hincapié, Ricardo; Čolić, Viktor; Rehbock, Christoph; Schwabe, Kerstin; Karst, Uwe; Krauss, Joachim K.; Barcikowski, Stephan:
Mechanical Stability of Nano-Coatings on Clinically Applicable Electrodes, Generated by Electrophoretic Deposition
In: Advanced Healthcare Materials, Jg. 11 (2022), Heft 23, Artikel 2102637
2022Artikel/Aufsatz in ZeitschriftOA Hybrid
ChemieFakultät für Chemie » Technische ChemieForschungszentren » Center for Nanointegration Duisburg-Essen (CENIDE)Forschungszentren » Zentrum für Medizinische Biotechnologie (ZMB)
Damit verbunden: 2 Publikation(en)
Titel in Englisch:
Mechanical Stability of Nano-Coatings on Clinically Applicable Electrodes, Generated by Electrophoretic Deposition
Autor*in:
Ramesh, Vaijayanthi
;
Stratmann, Nadine
;
Schaufler, Viktor
;
Angelov, Svilen D.
;
Nordhorn, Ilona D.
;
Heissler, Hans E.
;
Martínez-Hincapié, Ricardo
;
Čolić, Viktor
;
Rehbock, ChristophUDE
LSF ID
53195
ORCID
0000-0002-4708-5246ORCID iD
Sonstiges
der Hochschule zugeordnete*r Autor*in
;
Schwabe, Kerstin
;
Karst, Uwe
;
Krauss, Joachim K.
Sonstiges
korrespondierende*r Autor*in
;
Barcikowski, StephanUDE
GND
129006084
LSF ID
52773
ORCID
0000-0002-9739-7272ORCID iD
Sonstiges
der Hochschule zugeordnete*r Autor*in
korrespondierende*r Autor*in
Erscheinungsjahr:
2022
Open Access?:
OA Hybrid
Web of Science ID
PubMed ID
Scopus ID
Sprache des Textes:
Englisch
Schlagwort, Thema:
biocompatibility ; biomaterials ; colloids ; deep brain stimulation ; impedance ; laser ablation in liquids

Abstract in Englisch:

The mechanical stability of implant coatings is crucial for medical approval and transfer to clinical applications. Here, electrophoretic deposition (EPD) is a versatile coating technique, previously shown to cause significant post-surgery impedance reduction of brain stimulation platinum electrodes. However, the mechanical stability of the resulting coating has been rarely systematically investigated. In this work, pulsed-DC EPD of laser-generated platinum nanoparticles (PtNPs) on Pt-based, 3D neural electrodes is performed and the in vitro mechanical stability is examined using agarose gel, adhesive tape, and ultrasonication-based stress tests. EPD-generated coatings are highly stable inside simulated brain environments represented by agarose gel tests as well as after in vivo stimulation experiments. Electrochemical stability of the NP-modified surfaces is tested via cyclic voltammetry and that multiple scans may improve coating stability could be verified, indicated by higher signal stability following highly invasive adhesive tape stress tests. The brain sections post neural stimulation in rats are analyzed via laser ablation-inductively coupled plasma-mass spectrometry (LA-ICP-MS). Measurements reveal higher levels of Pt near the region stimulated with coated electrodes, in comparison to uncoated controls. Even though local concentrations in the vicinity of the implanted electrode are elevated, the total Pt mass found is below systemic toxicologically relevant concentrations.