Flexible neural electrode array
11647960 · 2023-05-16
Assignee
Inventors
- Martin SCHUETTLER (Emmendingen, DE)
- Juan Sebastian Ordonez (Ghent, BE)
- Tom Colin Bierbrauer (Freiburg, DE)
Cpc classification
A61B2562/164
HUMAN NECESSITIES
A61B5/24
HUMAN NECESSITIES
A61B2562/125
HUMAN NECESSITIES
International classification
A61B5/00
HUMAN NECESSITIES
A61B5/24
HUMAN NECESSITIES
Abstract
A flexible neural electrode array is provided, comprising a layer of metal which is arranged on a first layer of polymeric material and which forms a number of contact pads. The first layer of polymeric material is flexible along a predefined direction, each contact pad of the number of contact pads having a sequence of cuts through the metal, each cut extending in a straight line across the predefined direction. Each cut has an inner end and an outer end, the inner end being within the contact pad, the outer end being at an edge of the contact pad, and each second cut of the sequence of cuts having its outer end at the same edge of the contact pad. A method is further provided for fabricating a flexible neural electrode array.
Claims
1. A flexible planar neural electrode array, comprising: a layer of metal which is arranged on a first layer of polymeric material and which forms a number of contact pads, each contact pad of the number of contact pads being for interfacing with neural tissue, the first layer of polymeric material being flexible along a predefined direction, each contact pad of the number of contact pads having a sequence of straight cut lines through the metal, each straight cut line extending in a straight line across the predefined direction, a second layer of polymeric material, the second layer of polymeric material being arranged at least partially on the layer of metal, and being flexible along the predefined direction, the second layer of polymeric material having at least one opening defining the number of contact pads, wherein each straight cut line of the sequence of straight cut lines having an inner end point and an outer end point, the inner end point being within a boundary of a corresponding contact pad of the number of contact pads, the outer end point being at an edge defining the boundary of the corresponding contact pad of the number of contact pads, the outer end point being covered by the second layer of polymeric material, and the inner end point being exposed, wherein every other straight cut line of the sequence of straight cut lines having the outer end point at the same edge of each contact pad of the number of contact pads, wherein each contact pad of the number of contact pads with the sequence of straight cut lines having a rectangular shape when unstretched and forming at least one meander pattern portion when stretched in the predefined direction, wherein the metal layer further comprises a number of anchoring elements, the anchoring elements serving for fixating the metal layer with at least one of the layers of polymeric material, wherein the anchoring elements are embodied as through holes in the metal layer, the holes being arranged in at least one predetermined region along the predefined direction, the through holes allowing the polymeric layers to be connected to each other through the through holes, the at least one predetermined region being between the inner end point of each straight cut line and the edge defining the boundary of the contact pad, and being covered by the second polymeric layer.
2. The electrode array of claim 1, wherein the at least one meander pattern portion is stretchable or compressible along the predefined direction.
3. The electrode array of claim 1, further comprising a number of cutaways arranged in the metal layer at the inner ends of each of the straight cut lines of the sequence of straight cut lines.
4. The electrode array of claim 1, wherein the at least one opening is rectangular.
5. The electrode array of claim 1, wherein the at least one opening is circular.
6. The electrode array of claim 1, wherein the at least one opening has an annular form, and wherein each straight cut line of the sequence of straight cut lines extends radially with respect to the annular form.
7. The electrode array of claim 1, wherein the electrode array is formed as a cuff electrode array, each contact pad of the number of contact pads being ring-shaped.
8. The electrode array of claim 1, wherein the electrode array is formed as a cable-style electrode array, wherein at least one contact pad of the number of contact pads is ring-shaped or segmented ring-shaped positioned on an outside surface of the cable-style electrode array.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention and embodiments thereof are described in connection with the drawing. In the drawing,
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DETAILED DESCRIPTION
(12) The flexible neural electrode array according to the first embodiment of the invention comprises a layer of at least one piece of metal foil 10, made from e.g., stainless steel, platinum, iridium, or platinum-iridium alloy, that is patterned to a meander, which extends in a longitudinal direction A-A′ of the metal foil, refer to
(13) The outer edges along the direction A-A′ of the meander are perforated, thus forming anchoring elements (through holes) 30, 30 so that first (bottom) polymer layer 40 and second (top) polymer layer 60 can reach through these holes 30 and mechanically fixate the metal 10, refer to
(14) The creation of the meander can be done by straight cut lines 50 across direction A-A′ (refer again to
(15) Additional to the cuts, circular cut-aways 120 at the ends of the cuts (refer to
(16) As can be seen from
(17) For electrically connecting the electrode contact to a wire, the metal foil comprises a weld pad area 70 at a longitudinal end of the metal foil. The wire is attached to the metal contact at the weld pad area 70 e.g., by resistance welding, laser welding, ultrasonic welding, brazing or soldering. After attachment, the weld area is electrically sealed with a polymer.
(18) Alternatively, the welding area may be located remote to the meander contact. The weld pad is electrically connected to the meander contact using a conductive path made from the same metal foil as the meander contact and the contact pad.
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(20) As can be seen in
(21) An embodiment of a flexible electrode array is shown in
(22) Hereto, it defines a volume 100 inside the cuff The wrapping direction is along the direction 140. The cuff electrode has two meander contacts 80 embedded in a self-spiraling polymeric sheet 90. The cable 150 extends axially from the cuff
(23) The electrode array with the meander contact can be part of numerous applications. It is of particular use when a soft and flexible polymer body carries electrode contacts that experience stretching, bending, twisting.
(24) The metal layer formed as a meander does not dominate the device's mechanical properties over that of the polymer layer(s).
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(29) Typical applications for the electrode of the invention include—but are not limited to—the contacts of nerve cuff electrodes with ring-shaped contacts, refer to
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(31) In step a), a layer of polymer 40 is deposited to a thickness of typically some 10 μm on a mechanical carrier 130.
(32) In step b) the polymer layer 40 is removed using a laser at location 70 where a weld contact is to be formed.
(33) In step c), a metal foil 10 of a typical thickness of 5 to 50 μm is laminated on the polymer 40.
(34) In step d), the metal foil 10 is cut to shape with a laser, forming anchoring holes 30 and the meander 80, 50.
(35) In step e), a covering polymer layer 60 is deposited at a thickness of typically some 10 μm.
(36) In step f) the polymer layer ablated at the locations of the weld contact 70 and the electrode contact 20.
(37) In step g), the mechanical carrier 130 is removed.
(38) In step h), a wire 110 is attached to the weld pad 70.
(39) In step i), the weld 70 pad is sealed with polymer.
REFERENCE NUMERALS
(40) 10 Metal layer (foil)
(41) 20 Metal layer (contact pad(s))
(42) 30 Anchoring element (through hole)
(43) 40 First (bottom) layer of polymeric material
(44) 50 Cut (cutting edge of meander structure
(45) 60 Second (top) layer of polymeric material
(46) 70 Weld pad
(47) 80 Meander contact integrated in sheet
(48) 90 Polymeric sheet
(49) 100 Volume inside cuff for nerve placement
(50) 110 Wire
(51) 120 Circular cut-away as stress relieve
(52) 130 Mechanical carrier (fabrication aid)
(53) 140 direction of stretch force
(54) 150 Cable (wire bundle)
(55) A-A′ Longitudinal direction