The present invention relates to the field of fuel cells. It relates, more particularly, to a method for producing a miniature cell core. It also relates to a cell core and a cell obtained by this method.
A fuel cell is described in document FR 03 07 967. It consists of a large number of elementary cells disposed in series and each having a stack comprising, as shown diagrammatically in
The patent application EP 04 405063.1 presents a method according to which the current collector is made by galvanic deposition on a substrate and then transferred onto the membrane so as to be held there by being inlaid or by adhesive bonding.
The object of the present invention is to provide a method enabling the core of a fuel cell to be further miniaturized and enabling the performance to be improved and production costs to be reduced.
More precisely, the invention relates to a method for producing a fuel cell core, characterized in that it comprises the following operations in sequence:
The collectors may be either formed in situ on their substrate or formed separately and then added to their substrate.
According to a first embodiment of the invention, a membrane is deposited on the two subassemblies.
According to a second embodiment of the invention, a membrane is deposited on only one of the two subassemblies.
The invention also relates to a fuel cell core made by the above method and characterized in that the assembly obtained is inserted between two rigid frames in the manner of a transparency.
Finally, the invention relates to a fuel cell of which the core is made by the above method and characterized in that the assembly obtained is inserted between two rigid covers provided with connecting end pieces and providing, either side of the assembly, spaces for the necessary reagents.
Advantageously, the frames and covers also serve as supports for electrical contacts connecting the two collectors to the outside.
Other features of the invention will become apparent subsequently on reading the following description, made with regard to the appended drawings in which:
Reference will first of all be made to
a
At the start of the method, two identical subassemblies 20a-20b are provided, each formed of a substrate 21 and a metal current collector in the form of a mesh 22 deposited on the substrate. The collector has, in section, a mushroom or harpoon profile and, typically, a thickness of 5 to 10 μm. The face of the substrate which receives the collector is such that it can be detached therefrom by mechanical, chemical or thermal action.
Each collector 22 is advantageously made in situ by galvanic deposition of gold with the aid of a mask formed on the substrate according to the method described in detail in document EP 04 405063.1 already mentioned.
As a variant, the collectors 22 could also be made separately and then added to the substrates and fixed to these by adhesive bonding.
b
A polymerizable ionic semi-membrane of the Nafion® (cationic) or of the ADP-Morgane® (anionic) type is deposited in the liquid or pasty state on each subassembly 20a-20b so as to cover the collectors 22 completely. Typically, this layer is spread out by a technique known by the name of “spin coating” and has a thickness of 10 to 20 μm.
c
After prepolymerization of the semi-membranes 23, an operation which is not indispensable, the resulting subassemblies 24a-24b are fixed respectively on the work plates of a machine, called “flip chip bonding” machine, not shown in the drawing, and well known to a person skilled in the art, the two semi-membranes 23 facing each other.
d
The alignment and flatness of the two subassemblies 24a-24b having been adjusted, they are applied one against the other by the machine under pressure at a temperature and for a period such that the semi-membranes 23 are welded to each other and solidified by polymerization.
e
When the two plates of the machine are separated, the collectors 22 have to be detached from their respective substrates 21. In the case of collectors formed galvanically, separation is made by a simple mechanical action. If the collectors have been brought together and fixed by adhesive bonding, separation is made by chemical and/or thermal action.
The result is an assembly 25 comprising a solidified membrane 26 and two collectors 22 incorporated, face to face, in the membrane. Typically, the assembly has a thickness of 20 to 40 μm.
f
The two faces of the assembly 25 are, above the collectors 22, covered with a catalyst layer 27 essentially comprising catalyst elements properly so called, such as platinum and ruthenium, and electrical and ionic conducting elements such as carbon and the same material as that which constitutes the membrane 26.
A variant of the method is illustrated in
a
The first operation is identical to that of
b
A polymerizable ionic membrane 28 of the same type as the semi-membranes 23, but with a double thickness, is deposited in a liquid or pasty state on the assembly 20a in order to constitute the subassembly 29.
c
After prepolymerization of the membrane 28, an operation that is not indispensable, the assemblies 20b and 29 are fixed respectively onto the work plates of a “flip chip bonding” machine, the membrane 28 facing the collector 22 of the assembly 20b.
d
The alignment and flatness of the assemblies 20b and 29 having been adjusted, they are applied against each other by the machine under pressure at a temperature and for a duration such that the collector 22 of the assembly 20b is inlaid in the membrane which solidifies by polymerization.
e
The operation is identical to that of
f
The operation is identical to that of
Whatever the method used, the structure obtained suffers from the fact that the thin membrane 26 risks being deformed under the action of moisture, which presents a problem when the assembly has to be handled in order to incorporate it in a fuel cell.
According to the invention, as illustrated in
This “packaging” of the assembly, in the manner of a transparency, makes it possible to stabilize the shape of the membrane and makes it easier to handle.
Finally, reference will be made to
The present invention has been made with reference to isolated assemblies. In practice, as is the procedure in the field of microelectronics, several assemblies provided with their frames or covers are produced by forming a single membrane on a matrix of collectors. The assemblies are finally separated by cutting the membrane around the frames or covers.
It is therefore proposed to produce a miniature fuel cell core which, by virtue of the integration of current collectors into the membrane, greatly improves the membrane-collectors-catalysts contact and, by virtue of the use of frames, makes it possible to prevent deformations of the membranes without excessive supplementary costs. The invention also makes it possible, by virtue of the use of covers, to provide a ready-to-operate miniature fuel cell. Finally, it will be noted that the harpoon shape of the current collectors appreciably reinforces their strength in the membrane.
Number | Date | Country | Kind |
---|---|---|---|
04405424.5 | Jul 2004 | FR | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/EP05/52934 | 6/23/2005 | WO | 12/19/2006 |