Fabrication of flat electrodes utilizing picosecond laser manufacturing technology: Preliminary study for fabrication of a novel transverse intrafascicular multichannel electrode

Over the last decade we developed methods for the fabrication of laser-structured electrode arrays for neural engineering. For these electrode arrays a metal foil was structured with a 1064 nm Nd:YAG laser in the nanosecond pulse regime and placed within a silicone rubber substrate. Due to process restrictions the individual electrode sites are not in plane with the upper layer of the silicone rubber. Here, a new laser in the picosecond regime (355 nm Nd:YVO4) was used for laser-structuring. This allowed the fabrication of a novel electrode array out of a 25 μm thick sheet of MP35N metal with thinned-down and buried tracks as well as fixations for the electrode sites and contact pads. For the opening of the single electrodes two different processes, hatching and cutting, have been tested. Due to the interaction of the laser with the metal hatched electrodes had an increased surface area which was investigated with electrochemical measurements. The individual thicknesses of the layers were measured with a novel way of directly laser cutting the electrodes and measuring under a light microscope.

[1]  G J Suaning,et al.  Fabrication of implantable microelectrode arrays by laser cutting of silicone rubber and platinum foil , 2005, Journal of neural engineering.

[2]  Thomas Stieglitz,et al.  Scaling limitations of laser-fabricated nerve electrode arrays , 2008, 2008 30th Annual International Conference of the IEEE Engineering in Medicine and Biology Society.

[3]  T. Stieglitz,et al.  Stretchable tracks for laser-machined neural electrode arrays , 2009, Annual International Conference of the IEEE Engineering in Medicine and Biology Society.

[4]  T. Stieglitz,et al.  A transverse intrafascicular multichannel electrode (TIME) to interface with the peripheral nerve. , 2010, Biosensors & bioelectronics.

[5]  Stieglitz,et al.  Laser Microfabrication of Neural Electrode Arrays : Comparison of Nanosecond and Picosecond Laser , 2011 .

[6]  Thomas Stieglitz,et al.  Mechanical characterization of neural electrodes based on PDMS-parylene C-PDMS sandwiched system , 2011, 2011 Annual International Conference of the IEEE Engineering in Medicine and Biology Society.

[7]  Thomas Stieglitz,et al.  Thin films and microelectrode arrays for neuroprosthetics , 2012 .