The invention relates to a fabrication process of a micro-battery comprising an electrolytic membrane arranged between first and second electrodes and current collectors arranged on each side of the first and second electrodes.
A lithium micro-battery, in the form of thin films, the thickness whereof is comprised between 7 μm and 30 μm (preferably about 15 μm), is conventionally formed by means of the chemical vapor deposition (CVD) or physical vapor deposition (PVD) techniques. A micro-battery of this type is for example described in the document WO-A-9,848,467.
The operating principles of a micro-battery are based on insertion and de-insertion of an alkaline metal ion or a proton in the positive electrode of the micro-battery, preferably a lithium ion Li+ originating from a metallic lithium electrode. The micro-battery is formed by a stack of layers obtained by CVD or PVD, respectively constituting two current collectors, a positive electrode, an electrolyte, a negative electrode and, possibly, an encapsulation.
The elements of the micro-battery can be made from various materials:
U.S. Pat. No. 5,582,623 describes formation of a positive electrode of a lithium battery from a paste that is deposited on a substrate so as to form a thin film.
The substrate is:
Depending on the materials used, the operating voltage of a micro-battery is comprised between 2V and 4V, with a surface capacity of about 100 μAh/cm2. Recharging of a micro-battery only requires a few minutes of charging. The fabrication techniques used enable all the required shapes and surfaces to be obtained.
The capacity of a micro-battery can in principle be increased by increasing the thickness of the electrodes or by superposition of parallel-connected micro-batteries. These modifications are however delicate to implement. It is in fact difficult to obtain layers with a thickness of more than 10 μm by vapor deposition while preserving its initial properties. Moreover, the changes in volume caused in the different layers by diffusion of the lithium create large problems of stresses in the case of a stack of micro-batteries.
Furthermore, mini-batteries currently available on the market and fabricated using coating techniques have a thickness comprised between 300 μm and 650 μm with a surface capacity of about a few mAh/cm2, i.e. much greater than that of a micro-battery. The too large thickness of current mini-batteries does not enable them to be positioned on an integrated circuit, in particular in the case of a smart card having a maximum thickness of less than 0.76 mm.
The object of the invention is to increase the surface capacity of an energy source able to be placed on an integrated circuit.
According to the invention, this objective is achieved by the fact that the first electrode is formed on a first metal strip by surface coating, then cold compression, the first metal strip being removed before the current collectors are formed.
According to a first development of the invention, the second electrode is formed on a second metal strip by surface coating, then cold compression, the second metal strip being removed before the current collectors are formed.
According to a second development of the invention, the second electrode is formed by surface coating on the electrolytic membrane.
The electrodes and the electrolytic membrane are assembled by hot pressing before the metal strip or strips are removed.
According to another feature of the invention, the current collectors are formed by thin films formed on the electrodes by physical vapor deposition.
Other advantages and features will become more clearly apparent from the following description of particular embodiments of the invention given as non-restrictive examples only and represented in the accompanying drawings in which:
In a first step, a negative electrode 1 is prepared. An ink is for example formed by a mixture of the following four constituents:
The ink thus formed is applied on a first metal strip 2, made of copper, and compressed under 2 tonnes/cm2. Cold compression in one or more steps enables the required thickness to be obtained for the electrode 1 and enables it to be made to adhere to the metal strip 2 which acts as mechanical support therefor.
In a second step, a positive electrode 3 is prepared in the form of an ink made up from manganese oxide (LiMn2O4), PVDF and carbon black, coated on a second metal strip 4, made of aluminum, and compressed under 2 tonnes/cm2.
In a third step, an electrolytic membrane 5 made of PVDF/HFP copolymer is prepared. The membrane 5 is an electrically insulating and ionically conducting membrane after activation. It is formed by a phase inversion process, which enables a membrane having a controlled microporosity to be obtained. This process comprises the following three steps:
In a fourth step, the electrodes 1 and 3, respectively supported by the metal strips 2 and 4, and the membrane 5 are assembled. The membrane 5 is arranged between the electrodes placed facing one another. The positive electrode/membrane/negative electrode assembly is bonded by hot pressing (0.5 tonnes/cm2, 120° C.) with a thickness control enabling a thickness of 50 μm to 100 μm to be obtained for the assembly as represented in
In a fifth step, the metal strips 2 and 4 are removed, preferably by mechanical detachment. The assembly obtained after removal of the metal strips 2 and 4 is represented in
In a sixth step illustrated in
In a seventh step illustrated in
In an eighth step illustrated in
In a last step, the micro-battery is activated by filling, in a vacuum, by an electrolyte formed by a lithium salt. The micro-battery can then be encapsulated, for example by means of a silicon protective cap.
The fabrication process described above thus uses, in part, similar techniques to those that are conventionally used for fabricating mini-batteries (surface coating of the layers of the active stacking formed by the electrodes and electrolytic membrane). However, detachment of the metal strips enables the thickness of this stacking to be reduced as far as possible, which stacking is then completed by deposition of the current collectors by techniques of the PVD type, that are standard practice in microelectronics.
This makes it possible to fabricate for example a micro-battery with a surface of 25 mm2 and a thickness of 50 μm with a surface capacity of about 500 μAh/cm2 (i.e. 125 μAh), that is to say five times greater than the surface capacity of current micro-batteries. This micro-battery can be arranged on an integrated circuit that performs management of its charging and discharging. The micro-battery obtained thus combines the advantages of mini-batteries (high surface capacity in particular) and the advantages of micro-batteries (able to be integrated on an integrated circuit). A micro-battery of this type can, in particular, be used to improve the safety of smart cards and also in smart labels.
In an alternative embodiment, illustrated in
Number | Date | Country | Kind |
---|---|---|---|
01 13570 | Oct 2001 | FR | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/FR02/03590 | 10/21/2002 | WO | 00 | 7/10/2003 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO03/036750 | 5/1/2003 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
3556861 | Jammet | Jan 1971 | A |
5582623 | Chu | Dec 1996 | A |
5877547 | Rhelimi | Mar 1999 | A |
6402796 | Johnson | Jun 2002 | B1 |
6576369 | Moriguchi et al. | Jun 2003 | B1 |
6610440 | LaFollette et al. | Aug 2003 | B1 |
Number | Date | Country | |
---|---|---|---|
20040049909 A1 | Mar 2004 | US |