EP1574181A1

Electrode-bearing guide, cochlear implant comprising said guide and production method thereof

Abstract

The invention relates to an electrode-bearing guide, a cochlear implant comprising said guide and the production method thereof. According to the invention, the long and essentially flat guide comprises a plurality of electrodes (2) which are connected to corresponding contacts (3) by means of tracks (4). The inventive guide also comprises at least two stacked basic cells (CB1, CB2, ... CB11), each of said cells comprising an insulating base layer (11). Moreover, a conductive layer (12) is disposed on top of the aforementioned insulating layer and forms the electrodes (2), the tracks (4) and the contacts (3). The production method consists in successively stacking insulating and conductive layers and defining suitable shapes by means of photolithography in order to form electrodes, contacts, tracks and windows for accessing the electrodes and contacts. The invention enables the automated production of a guide with a large number of electrodes, which is suitably dimensioned for the atraumatic implantation thereof outside the tympanic canal.

EP1574181A1, drawing sheet 1
Sheet 1 of 5

Term

Term ended

Projected expiry passed 15 December 2023, 2.8 years ago.

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20 claims: 11 independent, 9 dependent

  1. 1
    Electrode carrier guide, especially for cochlear implants, elongated and substantially flat, which presents a plurality of electrodes (2), each of them connected to a corresponding contact (3) through a conducting track (4), characterized in that it comprises at least two overlapping basic cells (CB, CB';CB1, CB2, ... CB11), each cell comprising a base layer (11) made of an electrically insulating material on which is arranged a layer (12) made of an electrically conducting material, said electrically conducting material forming said electrodes (2), said conducting tracks (4) and said contacts (3).
  2. 4
    Guide according to any of the preceding claims, wherein each basic cell (CB, CB';CB1, CB2, ... CB11) comprises an insulating layer (13) arranged on said electrically conducting layer (12), said insulating layer (13) having access openings in correspondence with each electrode (2) and each contact (3).
  3. 6
    Guide according to any of the preceding claims, wherein at least some basic cells (CB, CB';CB1, CB2, ... CB11) have three electrodes (2) essentially aligned in the longitudinal direction of the cell.
  4. 7
    Guide according to any of the preceding claims, wherein said basic cells (CB, CB';CB 1, CB2, ... CB 11) have a width ranging from 0,3 to 2,5 mm.
  5. 8
    Guide according to any of the preceding claims, wherein each basic cell (CB, CB';CB 1, CB2, ... CB 11) base layer (11) have a thickness ranging from 2 µm to 5 µm, and said electrically conducting layer (12) have a thickness ranging from 0,1 µm to 0,5 µm.
  6. 9
    Guide according to any of the preceding claims, wherein the distance between one basic cell (CB, CB';CB1, CB2, ... CB11) electrodes (2) ranges from 0,25 µm to 10 µm.
  7. 10
    Guide according to any of the preceding claims, wherein the basic cells (CB') narrow at least in the longitudinal portion where said electrodes (2) are arranged.
  8. 11
    Guide according to any of the preceding claims, wherein said base layer (11) material is selected among PTFE, PET, poliimide, silicone and paraxylene based polymers.
  9. 12
    Guide according to any of the preceding claims, wherein said electrically conducting layer (12) is made of a material selected among gold, platinum or a platinum-iridium alloy.
  10. 13
    Guide according to any of the preceding claims, wherein each cell (CB, CB';CB1, CB2, ... CB11) comprises a film made of a material suitable for enhancing adherence, arranged between said base layer (11) and said electrically conducting layer (12).
  11. 16
    Method for manufacturing electrode carrier guides, characterized in that it comprises a first step of forming one basic cell (CB, CB'; CB1, CB2, ... CB11) of at least one guide (G), having the following sub-steps:(a) preparing a sacrificial wafer (15);(b) depositing on said wafer (15) a base layer (11) made of an electrically insulating material;(c) depositing on said electrically insulating layer (1I) a layer of photosensitive resin and photolithografically designing a geometry of electrodes (2), tracks (4) and contacts (3);(d) depositing on said resin layer a layer (12) made of an electrically conducting material and then removing the resin and the electrically conducting material deposited outside the region of the photolithografically designed geometry;(e) depositing a second electrically insulating layer (13), completely covering said electrically conducting layer (12);and(f) forming on said second electrically insulating layer (13) some accesses to the underlying electrodes (2) and contacts (3), by opening access windows by means of photolithographic techniques and carrying out a chemical attack;and    in that the sub-steps (c) to (f) are repeated on as much times as basic cells (CB, CB';CB1, CB2, ... CB11) are intended to be piled up on each guide (G), and in that finally said sacrificial wafer (15) is removed.