Patent Description:
The present invention relates an electrode, an electrode assembly manufactured by laminating the electrode and a method for manufacturing the same, and more particularly, to an electrode which is capable of preventing warpage from occurring due to rolling when manufactured and capable of reducing possibility of occurrence of short circuit when an external impact occurs (particularly, when penetration damage of the pouch occurs), an electrode assembly and a method for manufacturing the same.

Batteries storing electrical energy may be generally classified into primary batteries and a secondary batteries. Such a primary battery is a disposable consumable battery. On the other hand, such a secondary battery is a chargeable battery that is manufactured by using a material in which oxidation and reduction processes between current and the material are capable of being repeated. That is, when the reduction reaction to the material is performed by the current, the battery is charged. When the oxidation reaction to the material is performed by the current, the battery is discharged. Such charging-discharging are repeatedly performed to generate electricity. <CIT> discloses an electrode assembly. <CIT> discloses a secondary battery and method of manufacture thereof.

In general, secondary batteries comprise nickelcadmium batteries, nickel-hydrogen batteries, lithium ion batteries, and lithium ion polymer batteries. Such a secondary battery is being applied to and used in small-sized products such as digital cameras, P-DVDs, MP3Ps, mobile phones, PDAs, portable game devices, power tools, E-bikes, and the like as well as large-sized products requiring high power such as electric vehicles and hybrid vehicles, power storage devices for storing surplus power or renewable energy, and backup power storage devices.

The lithium secondary battery is generally formed by laminating a positive electrode (i.e., cathode), a separator, and a negative electrode (i.e., anode). Also, materials of the positive electrode, the separator, and the negative electrode may be selected in consideration of battery lifespan, charging/discharging capacities, temperature characteristics, stability, and the like. The charging and discharging of the lithium secondary battery are performed while lithium ions are intercalated and deintercalated from lithium metal oxide of the positive electrode to the negative electrode.

In general, unit cells, each of which has a three-layered structure of a positive electrode/a separator/a negative electrode or a five-layered structure of a positive electrode/a separator/a negative electrode/a separator/a positive electrode or a negative electrode/a separator/a positive electrode/a separator/a negative electrode, are assembled to constitute one electrode assembly. Also, the electrode assembly is accommodated in a case such as a cylindrical can and a prismatic pouch.

The electrode is manufactured by applying slurry to both surfaces or one surface of a collector. A process of manufacturing electrode comprises a step of putting and stirring (mixing) a source material of the slurry to stir, a step of applying the completed slurry to a collector, a step of rolling the collector coated with the slurry, a step of forming an electrode tab, and a step of performing vacuum drying.

The rolling process is performed so that the electrode is reduced in thickness to increase in density and improve binding strength between the collector 1a and the slurry. In general, as illustrated in <FIG>, the rolling process is performed in a manner in which the electrode passes between two rolling rollers <NUM>.

In the electrode, the slurry 1b and 2b may be generally applied to both the surfaces of the collectors 1a and 2a. However, in the case of the electrode that is placed on the outermost layer, since lithium ions are not exchanged at the outermost layer, a single-sided electrode on which the slurry 1b is applied to only one surface of the collector 1a may be provided.

However, since deformation rates of the collector 1a and the slurry 1b are different from each other (since thermal expansion coefficients, densities, and the like are different from each other) while heat and a pressure are applied to the rolling roller <NUM>, the single-sided electrode may be bent as illustrated in <FIG>.

Also, in the case of the outermost electrode, the collector 1a made of a metal material may be closest to the electrode within the pouch. Thus, when the electrode is stuck by a pointed object, or when a nail <NUM> passes through the pouch in a stability test, short circuit may occurs as illustrated in <FIG>.

Accordingly, to solve the above problem, a main object of the present invention is to provide an electrode, an electrode assembly and a method for manufacturing the same.

To achieve the above object, the present invention provides an electrode as laid out in independent claim <NUM>.

The present invention also provides an electrode assembly as laid out in claim <NUM>.

According to an embodiment of the present invention, the outermost electrode may be the electrode placed at the uppermost layer of the electrode assembly, and the protection layer may be laminated to be placed at the uppermost layer of the electrode assembly. Alternatively, the outermost electrode may be the electrode placed at the lowermost layer of the electrode assembly, and the protection layer may be laminated to be placed at the lowermost layer of the electrode assembly.

Furthermore, the present invention provides a method for manufacturing an electrode assembly as laid out in claim <NUM>.

Here, when the outermost electrode is disposed at the uppermost layer of the electrode assembly, the protection layer may be laminated to be disposed at the uppermost layer, and when the outermost electrode is disposed at the lowermost layer of the electrode assembly, the protection layer may be laminated to be disposed at the lowermost layer.

According to the present invention having the above-described structure, the protection layer is laminated on the outermost electrode to suppress or offset the bending or twisting force during the rolling. Also, since the protection layer faces the inner surface of the pouch in the electrode assembly to protect the collector, the electrode and the electrode assembly may be protected against the external impact.

The present invention relates to an electrode assembly and a method for manufacturing the same. The electrode assembly has a structure in which a plurality of electrodes are laminated with a separator <NUM> therebetween. Here, in the electrode, which is disposed at the outermost layer, i.e., the uppermost layer or the lowermost layer, of the electrodes constituting the electrode assembly, a collector 1a has one surface coated with slurry 1b and the other side to which a protection layer <NUM> adheres, and the protection layer <NUM> is made of a polymer material having a molecular weight of <NUM>,<NUM> or more. According to the present invention, all the electrodes may be negative electrodes or positive electrodes.

That is, as illustrated in <FIG> and <FIG>, an electrode assembly according to the present invention has a structure in which a separator <NUM> is disposed between electrode having polarities different from each other, and the electrodes and the separator <NUM> are repeatedly laminated (i.e., in <FIG>, when the lowermost electrode is a negative electrode in which negative electrode slurry 1b is applied to a negative electrode collector 1a, the separator <NUM> is laminated on the negative electrode, and a positive electrode, in which positive electrode slurry 2b is applied to a positive electrode collector 2a, is laminated on the separator <NUM>), and the outermost electrode placed at the outermost layer is provided with a protection layer <NUM>. For reference, although the electrode in which the protection layer <NUM> is provided at only the uppermost layer is illustrated in <FIG>, the protection layer <NUM> may be provided at the lowermost layer. Also, the electrode provided with the protection layer <NUM> may be the negative electrode or the positive electrode.

The outermost electrode is laminated in a direction in which the slurry 1b contacts the separator <NUM> so that the protection layer <NUM> is placed at the uppermost layer (or the lowermost layer) of the electrode assembly.

The protection layer <NUM> is made of a polymer material having a molecular weight of <NUM>,<NUM> or more. Also, the protection layer <NUM> is made of a material having electrical insulation to prevent short circuit from occurring when a pointed object such as a nail <NUM> passes through a pouch (not shown).

Furthermore, when rolling is performed in a state in which the slurry 1b, the collector 1a, and the protection layer <NUM> are laminated, as illustrated in <FIG>, the protection layer <NUM> is disposed at an opposite side of the collector 1a to suppress deformation of the slurry 1b or be deformed to offset deformation of the slurry 1b and/or the collector 1a so that the whole upper and lower layers remain in a flat state.

Also, in this embodiment, the outermost electrode may be placed at the uppermost layer or the lowermost layer in the electrode assembly. Here, the protection layer <NUM> may be disposed at the uppermost or lowermost layer so as to be closest to the pouch in which the electrode assembly is built (as illustrated in <FIG>).

Furthermore, the present invention provides a method for manufacturing the above-described electrode assembly.

The method for manufacturing the electrode assembly according to the present invention comprises a step of applying slurry 1b to one surface of a collector 1a and laminating a protection layer <NUM> on the other surface to manufacture the outermost electrode, a step of allowing the outermost electrode to pass between a pair of rolling rollers <NUM> and thereby to roll the outermost electrode, and a step of laminating the rolled outermost electrode to be disposed at the uppermost or lowermost layer of the electrode assembly.

Here, the slurry 1b is prepared by mixing a solution containing a binder in a solvent with an active material to have viscosity suitable for coating or applying. Also, in the rolling roller <NUM>, an appropriate pressure and heat may be applied to reduce a thickness of the electrode so that density increases. Alternatively, before the outermost electrode is laminated in the electrode assembly, a process of cutting the electrode to an appropriate size, a process of processing an electrode tab, a process of performing vacuum drying to remove moisture contained in the electrode, and the like may be performed.

When the outermost electrode is disposed at the uppermost layer of the electrode assembly, the protection layer <NUM> is laminated to be disposed at the uppermost layer. When the outermost electrode is disposed at the lowermost layer of the electrode assembly, the protection layer <NUM> is laminated to be disposed at the lowermost layer.

Claim 1:
An electrode for an electrode assembly, in which a plurality of electrodes are laminated, and a separator is inserted between the adjacent electrodes,
the electrode comprising:
a current collector;
a slurry applied on one surface of the current collector; and
a protection layer adhered to the other surface of the current collector,
wherein the protection layer is made of a polymer material having electrical insulation;
wherein the electrode is prepared by:
passing the electrode between a pair of rolling rollers such that rolling is performed in a state in which the slurry, the collector, and the protection layer are laminated and the protection layer is deformed in a direction in which deformation of the slurry if offset.