Title :
Neural Electrode Array Based on Aluminum: Fabrication and Characterization
Author :
Coumiotis Moreira Peixoto, Alexandre ; Goncalves, S.B. ; Ferreira Da Silva, Andrielson ; Dias, Nuno S. ; Higino Correia, Jose
Author_Institution :
Dept. of Ind. Electron., Univ. of Minho, Guimaraes, Portugal
Abstract :
A unique neural electrode design is proposed with 3 mm long shafts made from an aluminum-based substrate. The electrode is composed by 100 individualized shafts in a 10 × 10 matrix, in which each aluminum shafts are precisely machined via dicing-saw cutting programs. The result is a bulk structure of aluminum with 65 ° angle sharp tips. Each electrode tip is covered by an iridium oxide thin film layer (ionic transducer) via pulsed sputtering, that provides a stable and a reversible behavior for recording/stimulation purposes, a 40 mC/cm2 charge capacity and a 145 Ω impedance in a wide frequency range of interest (10 Hz-100 kHz). Because of the non-biocompatibility issue that characterizes aluminum, an anodization process is performed that forms an aluminum oxide layer around the aluminum substrate. The result is a passivation layer fully biocompatible that furthermore, enhances the mechanical properties by increasing the robustness of the electrode. For a successful electrode insertion, a 1.1 N load is required. The resultant electrode is a feasible alternative to silicon-based electrode solutions, avoiding the complexity of its fabrication methods and limitations, and increasing the electrode performance.
Keywords :
anodisation; biomedical electrodes; biomedical materials; iridium compounds; neurophysiology; passivation; sputter deposition; thin films; Al; Al-IrO2; aluminum oxide layer; aluminum shafts; aluminum-based substrate; anodization; charge capacity; dicing-saw cutting programs; frequency 10 Hz to 100 kHz; ionic transducer; iridium oxide thin film; mechanical properties; neural electrode array; nonbiocompatibility; passivation layer; pulsed sputtering; resistance 145 ohm; silicon-based electrode solutions; size 3 mm; unique neural electrode design; Invasive electrode; aluminum; electrode array; iridium oxide; recording; sharp tips; stimulation;
Journal_Title :
Sensors Journal, IEEE
DOI :
10.1109/JSEN.2013.2270034