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Development of an active high-density transverse intrafascicular micro-electrode probe

Authors :
Kevin J. Otto
Nima Maghari
Rik Verplancke
Rizwan Bashirullah
Erkuden Goikoetxea
Dieter Cuypers
Erin Patrick
Maarten Cauwe
Bjorn Vandecasteele
Dries Braeken
Aritra Kundu
Marco Ballini
John O'Callaghan
Lothar Mader
David Schaubroeck
Maaike Op de Beeck
Celine Vanhaverbeke
Source :
Journal of Micromechanics and Microengineering. 30:015010
Publication Year :
2019
Publisher :
IOP Publishing, 2019.

Abstract

Objective. In this work, the development of an active high-density transverse intrafascicular micro-electrode (hd-TIME) probe to interface with the peripheral nervous system is presented. Approach. The TIME approach is combined with an active probe chip, resulting in improved selectivity and excellent signal-to-noise ratio. The integrated multiplexing capabilities reduce the number of external electrical connections and facilitate the positioning of the probe during implantation, as the most interesting electrodes of the electrode array can be selected after implantation. The probe chip is packaged using thin-film manufacturing techniques to allow for a minimally invasive electronic package. Special attention is paid to the miniaturization, the mechanical flexibility and the hermetic encapsulation of the device. Main results. A customized probe chip was designed and packaged using a flexible, implantable thin electronic package (FITEP) process platform. The platform is specifically developed for making slim, ultra-compliant, implantable complementary metal-oxide-semiconductor based electronic devices. Multilayer stacks of polyimide films and HfO2/Al2O3/HfO2 layers deposited via atomic layer deposition act as bidirectional diffusion barriers and are key to the hermetic encapsulation. Their efficacy was demonstrated both by water vapor transmission rate tests and accelerated immersion tests in phosphate buffered saline at 60 °C. Using the hd-TIME probe, an innovative implantation method is developed to prevent the fascicles from moving away when the epineurium is pierced. In addition, by transversally implanting the hd-TIME probe in the proximal sciatic nerve of a rat, selective activation within the nerve was demonstrated. Significance. The FITEP process platform can be applied to a broader range of integrated circuits and can be considered as an enabler for other biomedical applications.

Details

ISSN :
13616439 and 09601317
Volume :
30
Database :
OpenAIRE
Journal :
Journal of Micromechanics and Microengineering
Accession number :
edsair.doi...........ad6acd5701dc2e79c45e467c14473e9a
Full Text :
https://doi.org/10.1088/1361-6439/ab5df2