DocumentCode :
1368998
Title :
An Implantable Microactuated Intrafascicular Electrode for Peripheral Nerves
Author :
Bossi, Silvia ; Kammer, Sascha ; Dorge, T. ; Menciassi, Arianna ; Hoffmann, Klaus Peter ; Micera, Silvestro
Author_Institution :
Adv. Robot. Technol. & Syst. Lab., Scuola Superiore Sant´´Anna, Pontedera, Italy
Volume :
56
Issue :
11
fYear :
2009
Firstpage :
2701
Lastpage :
2706
Abstract :
Important advancements have been recently achieved in the field of neural interfaces to restore lost sensory and motor functions. The aim of this letter was to develop an innovative approach to increase the selectivity and the lifetime of polyimide-based intrafascicular electrodes. The main idea was to obtain a neural interface that is able to restore a good signal quality by improving the electrical connection between the active sites and the surrounding axons. The high flexibility of polyimide-based neural interfaces allows to embed microactuators in the interface core and achieve desired microdisplacements of the active sites. Nearly equiatomic nickel-titanium alloy was selected as a microactuator because of its shape memory effect. A single TiNi thin film was obtained by dc magnetron sputtering, and was segmented into four distinct sectors. This solution allowed the independent actuation of the different active sites (multiactuation). A corrugated profile was impressed to the new actuated intraneural (ACTIN) interface. The active sites were positioned in correspondence to the peaks of the corrugation, thus maximizing the effects of the single actuations. The technological results, the electrical properties, the thermal behavior, and eventually, the actuation performances of the current ACTIN prototype are shown and discussed. The actuation cycle was thermally compatible for biomedical applications. Promising results were obtained from the current ACTIN prototype with an average controlled movement of 7 mum of the peaks.
Keywords :
bioelectric phenomena; microactuators; neurophysiology; nickel alloys; prosthetics; shape memory effects; sputter deposition; thin films; titanium alloys; TiNi; actuated intraneural interface; axons; biomedical applications; dc magnetron sputtering; electrical connection; equiatomic nickel-titanium alloy; implantable microactuated intrafascicular electrode; interface core; microactuator; microactuators; multiactuation; neural interface; peripheral nerves; polyimide-based intrafascicular electrodes; shape memory effect; thin film; Electrodes; Encapsulation; Implants; Microactuators; Nerve fibers; Nervous system; Neural prosthesis; Neurons; Robotics and automation; Shape memory alloys; Signal restoration; Sputtering; Intrafascicular interfaces; TiNi microactuators; multiactuation; neural prosthesis; peripheral nervous system (PNS); Action Potentials; Electrodes, Implanted; Equipment Design; Equipment Failure Analysis; Humans; Microelectrodes; Miniaturization; Peripheral Nerves;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2009.2031169
Filename :
5238546
Link To Document :
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