JP4632860B2 - Secondary battery and manufacturing method thereof - Google Patents

Secondary battery and manufacturing method thereof Download PDF

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JP4632860B2
JP4632860B2 JP2005145482A JP2005145482A JP4632860B2 JP 4632860 B2 JP4632860 B2 JP 4632860B2 JP 2005145482 A JP2005145482 A JP 2005145482A JP 2005145482 A JP2005145482 A JP 2005145482A JP 4632860 B2 JP4632860 B2 JP 4632860B2
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secondary battery
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JP2006324095A (en
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悟 小路
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Envision AESC Energy Devices Ltd
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    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E60/00Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
    • Y02E60/10Energy storage using batteries
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02PCLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
    • Y02P70/00Climate change mitigation technologies in the production process for final industrial or consumer products
    • Y02P70/50Manufacturing or production processes characterised by the final manufactured product

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Description

本発明は、電極シート及びセパレータを用いた二次電池及びその製造方法に関し、特に、安定で高速に簡易な方法により作製可能な二次電池及びその製造方法に関する。   The present invention relates to a secondary battery using an electrode sheet and a separator and a method for manufacturing the same, and more particularly to a secondary battery that can be manufactured stably and at high speed by a simple method and a method for manufacturing the same.

携帯型電話機などの電子機器類において、主電源の高性能化及び高容量化を図れるリチウムイオン二次電池は、有望な電池として知られている。一般的に、このタイプの密閉型二次電池は、シート状の正極及び負極の間に、セパレータを介挿させて、捲回もしくは積層して電極群を形成し、この電極群を電池外装容器内に封装して作製される。   In electronic devices such as portable telephones, lithium ion secondary batteries that can improve the performance and capacity of the main power source are known as promising batteries. In general, this type of sealed secondary battery is formed by interposing a separator between a sheet-like positive electrode and a negative electrode, and winding or stacking to form an electrode group. It is made by sealing inside.

シート状の両電極は、アルミ又は銅製の10〜20μmのシート状の集電体に電極活物質を塗布し、密度の向上を図るための圧延処理を施し、所要の寸法・形状に裁断もしくは打ち抜きをして、分離することで作製される。なお、電極活物質の塗布では、電極群を形成する際に必要なリード箔を溶着するための電極活物質の非塗工領域が設けられる。この非塗工領域は、電極の幅寸法以下で十分であり、不要部は、排除しても構わないものである。   Both sheet-shaped electrodes are coated with an electrode active material on a 10-20 μm sheet-shaped current collector made of aluminum or copper, subjected to a rolling process to improve density, and cut or punched to the required dimensions and shape. And then separated. In addition, in application | coating of an electrode active material, the non-coating area | region of the electrode active material for welding lead foil required when forming an electrode group is provided. This non-coating region is sufficient to be equal to or smaller than the width dimension of the electrode, and unnecessary portions may be excluded.

セパレータは微細な孔のあいたポリエチレンやポリプロピレンの20〜30μm程度のフイルムから形成されており、それを正極シートと負極シート間に挟み、電池内部が過熱されると、セパレータに設けられた孔が溶融して孔が閉塞される。   The separator is made of a polyethylene or polypropylene film with fine pores of about 20-30 μm. When the separator is sandwiched between the positive electrode sheet and the negative electrode sheet and the inside of the battery is overheated, the holes provided in the separator are melted. Then the hole is closed.

図3は、上記従来技術によるリチウムイオン二次電池用の電極積層体を示し、図3(a)はその平面図であり、図3(b)はその模式的断面図である。   FIG. 3 shows an electrode laminate for a lithium ion secondary battery according to the above-described prior art, FIG. 3 (a) is a plan view thereof, and FIG. 3 (b) is a schematic sectional view thereof.

図3(a)に示すように、非塗工領域3に形成されるリード部が、電極の積層部38から引き出される。また、図3(b)に電極の積層状態を示すように、集電体1の表裏面に電極活物質2を、リードに相当する非塗工領域3を除き塗布し、圧縮する。電極シートを電池形状に裁断した後、負極電極シート・正極電極シートを交互に積層し、正極・負極電極間には電池形状に裁断したセパレータ5を介挿させる。なお、図3(b)では同極の裁断された電極シート6を等しい高さで表示した。   As shown in FIG. 3A, the lead portion formed in the non-coated region 3 is drawn out from the electrode laminated portion 38. 3B, the electrode active material 2 is applied to the front and back surfaces of the current collector 1 except for the non-coated region 3 corresponding to the leads, and compressed. After the electrode sheet is cut into a battery shape, negative electrode sheets and positive electrode sheets are alternately stacked, and a separator 5 cut into a battery shape is inserted between the positive electrode and the negative electrode. In addition, in FIG.3 (b), the electrode sheet 6 cut | disconnected of the same pole was displayed by equal height.

この積層の際、セパレータ5は20〜30μmのポリエチレンやポリプロピレン製であり非常に薄いため剛性がなく、取り扱いが困難となる。   At the time of this lamination, the separator 5 is made of polyethylene or polypropylene having a thickness of 20 to 30 μm and is very thin, so it has no rigidity and is difficult to handle.

上記問題に対しては、電極シートに塗工方法・ラミネート方法・転写方法又は熱溶着によりセパレータを一体化させ、取り扱いを容易にする方法が、特許文献1及び特許文献2に開示されている。しかしながら、多孔質であるセパレータを、塗工法、ラミネート法もしくは転写法により形成すること(特許文献1)、又は熱溶着により電極面に貼り付けること(特許文献2)は、セパレータの多孔質の特性を失わせるため、現実的には困難な方法である。   With respect to the above problem, Patent Document 1 and Patent Document 2 disclose a method in which a separator is integrated with an electrode sheet by a coating method, a laminating method, a transfer method, or heat welding to facilitate handling. However, forming a porous separator by a coating method, a laminating method or a transfer method (Patent Document 1), or pasting it on an electrode surface by thermal welding (Patent Document 2) means that the porous characteristics of the separator In practice, this is a difficult method.

特開平10−50348号公報Japanese Patent Laid-Open No. 10-50348 特開2000−285955号公報JP 2000-285955 A

上述した従来例では、正極電極、負極電極及びセパレータを積層する際、20〜30μmのポリエチレンやポリプロピレン製の剛性のないセパレータシートを単独で取り扱うので、取り扱いが非常に困難となる。   In the above-described conventional example, when laminating the positive electrode, the negative electrode, and the separator, a 20-30 μm polyethylene or polypropylene non-rigid separator sheet is handled alone, which makes handling very difficult.

本発明は、このような問題点を解決すべくなされたもので、その技術課題は、薄いセパレータを使用する二次電池において、容易に積層できるセパレータと電極の積層構造を有する二次電池及びその製造方法を提供することにある。   The present invention has been made to solve such problems, and the technical problem thereof is a secondary battery having a laminated structure of a separator and an electrode that can be easily laminated in a secondary battery using a thin separator, and the same. It is to provide a manufacturing method.

本発明では、上記課題を解決するために、セパレータと電極を積層する際、セパレータの一部を電極に溶着させることにより、セパレータの取り扱いを容易にするものである。その手段として、電極裁断装置において、帯状の電極の表裏にセパレータを重ね合わせた後、ヒーター付き裁断機構によりセパレータ及び帯状の電極を裁断し、セパレータを電極端部に溶着する。   In the present invention, in order to solve the above-described problems, when the separator and the electrode are stacked, a part of the separator is welded to the electrode to facilitate the handling of the separator. As a means for this, in the electrode cutting apparatus, after the separator is overlapped on the front and back of the belt-like electrode, the separator and the belt-like electrode are cut by a cutting mechanism with a heater, and the separator is welded to the electrode end.

すなわち、本発明の二次電池は、薄板状の集電体に電極活物質が塗布されてなる正負の電極が多孔質セパレータを介して積層された二次電池であって、前記電極活物質は前記集電体の両面に塗布され、前記電極活物質を覆うように多孔質セパレータが重ね合わされ、前記電極及び前記多孔質セパレータは裁断された端部を有し、前記多孔質セパレータの裁断端部は前記電極のうち正負いずれか一方の電極の裁断端部に溶着し、前記多孔質セパレータと前記電極が一体化していることを特徴とする。 That is, the secondary battery of the present invention is a secondary battery in which positive and negative electrodes obtained by applying an electrode active material to a thin plate current collector are stacked via a porous separator, and the electrode active material is A porous separator is applied to both sides of the current collector, and a porous separator is overlaid so as to cover the electrode active material. The electrode and the porous separator have a cut end, and the cut end of the porous separator. Is welded to the cut end of one of the positive and negative electrodes, and the porous separator and the electrode are integrated .

また、本発明の二次電池の製造方法は、集電体の両面に電極活物質を塗布してなる正負の電極シートを多孔質セパレータを介して積層した二次電池の製造方法であって、帯状集電体の片方の側端部で帯状の部分を露出させ残部に電極活物質を連続的に塗布して帯状電極シートを作製する工程と、正負いずれか一方の帯状電極シートの両面に前記電極活物質を覆うように多孔質セパレータを重ね合わせて帯状の積層配置シートを作製する工程と、前記積層配置シートをヒーター付き打ち抜き刃を使用した裁断機構により前記多孔質セパレータの裁断部が前記電極シートの裁断部に溶着するように裁断する工程とを含むことを特徴とする。   Further, the method for producing a secondary battery of the present invention is a method for producing a secondary battery in which positive and negative electrode sheets formed by applying an electrode active material on both sides of a current collector are laminated via a porous separator, A step of exposing the band-like part at one side end of the band-shaped current collector and continuously applying an electrode active material to the remaining part to produce a band-shaped electrode sheet; and the both sides of either the positive or negative band-shaped electrode sheet The step of producing a belt-like laminated arrangement sheet by overlaying a porous separator so as to cover the electrode active material, and the cutting portion of the porous separator is formed by the cutting mechanism using a punching blade with a heater. And a step of cutting so as to be welded to the cutting portion of the sheet.

電極シートにセパレータを凝着させ、電極シートと一体化することにより、剛性のないセパレータを単体で扱うことが不要となるため、安定な二次電池の構造が構築され、安価な二次電池及びその製造方法を提供できる。   By adhering the separator to the electrode sheet and integrating it with the electrode sheet, it becomes unnecessary to handle a non-rigid separator alone, so a stable secondary battery structure is constructed, and an inexpensive secondary battery and The manufacturing method can be provided.

まず、本発明の実施の形態での二次電池製造工程の概要を説明する。シート状集電体に、リード箔を溶着するための非塗工領域を除き、電極活物質を連続塗布した後、圧延処理を施しリール状にする。正負いずれかの電極シートについて、電極リールから電極シートを引き出し、その表裏に、電極活物質を覆う様セパレータを重ね合わせて配置し、ヒーター付き打ち抜き刃を使用した裁断機構により、セパレータ端部を電極に溶着させ、かつ所定の寸法に裁断・分離する。それを他極の裁断された電極シートと共に積層して本実施の形態の二次電池を得る。   First, the outline of the secondary battery manufacturing process in the embodiment of the present invention will be described. The electrode active material is continuously applied to the sheet-shaped current collector except for the non-coating region for welding the lead foil, and then rolled to form a reel. For either positive or negative electrode sheet, pull the electrode sheet from the electrode reel, place the separator on top and bottom so as to cover the electrode active material, and place the separator end on the electrode by a cutting mechanism using a punching blade with a heater. And is cut and separated to a predetermined size. The secondary battery of the present embodiment is obtained by stacking it together with the other electrode sheet cut.

次に図面に基づいて説明する。図1は、本発明の一実施の形態でのリチウムイオン二次電池の作製方法を示し、図1(a)は電極およびセパレータの積層裁断方法を示す平面図であり、図1(b)はその正面図である。まず、集電体1の表裏面に電極活物質2を、リードに相当する帯状の非塗工領域3を除き、連続塗布した後、加圧し所定の電極厚みまで圧縮し、電極リール41にする。次いで、図1に示すように、電極リール41から引き出した電極シートの表裏に電極活物質2を覆うようにロール状セパレータ51から引き出したセパレータ5を重ね合わせて配置する。次にヒーター付き裁断刃7を装備する裁断機構8により、電極シートはセパレータ5と共に電池形状に裁断され、その際セパレータ5は、ヒーター付き裁断刃7に接触し、接触部が熱溶解する。ヒーター付き裁断刃7は直後に離れ、セパレータ5の熱溶解部は電池形状の電極シート6に凝着し、一体となる。このとき、ヒーター付き裁断刃7の温度は190℃程度にする。   Next, a description will be given based on the drawings. FIG. 1 shows a method for manufacturing a lithium ion secondary battery according to an embodiment of the present invention, FIG. 1 (a) is a plan view showing a method for laminating and cutting electrodes and separators, and FIG. It is the front view. First, the electrode active material 2 is continuously applied to the front and back surfaces of the current collector 1 except for the strip-shaped non-coating region 3 corresponding to the lead, and then pressed and compressed to a predetermined electrode thickness to form an electrode reel 41. . Next, as shown in FIG. 1, the separator 5 drawn out from the roll-shaped separator 51 is disposed so as to cover the electrode active material 2 on the front and back of the electrode sheet drawn out from the electrode reel 41. Next, the electrode sheet is cut into a battery shape together with the separator 5 by the cutting mechanism 8 equipped with the cutting blade 7 with a heater. At that time, the separator 5 comes into contact with the cutting blade 7 with a heater, and the contact portion is thermally melted. The heater-equipped cutting blade 7 is separated immediately, and the heat-dissolving part of the separator 5 adheres to the battery-shaped electrode sheet 6 and is integrated. At this time, the temperature of the cutting blade 7 with a heater is set to about 190 ° C.

図2は、上記方法により作製されたリチウムイオン二次電池積層体の構造を示す図である。図2(a)は全体の平面図であり、28は電極の積層部を示す。図2(b)はその積層状態を示す断面図であり、セパレータ5の端部が、切断のとき熱溶解し、電極シート6の切断端部に凝着している。   FIG. 2 is a diagram showing the structure of a lithium ion secondary battery laminate produced by the above method. FIG. 2A is a plan view of the whole, and 28 indicates a laminated portion of the electrodes. FIG. 2B is a cross-sectional view showing the laminated state. The end of the separator 5 is melted by heat at the time of cutting, and is adhered to the cut end of the electrode sheet 6.

以上、この発明の実施の形態を説明したが、この発明は、この実施の形態に限られるものではなく、この発明の要旨を逸脱しない範囲の設計変更があっても、本発明に含まれる。すなわち、当業者であれば、なしえるであろう各種変形、修正を含むことはもちろんである。   Although the embodiment of the present invention has been described above, the present invention is not limited to this embodiment, and design changes within a range not departing from the gist of the present invention are also included in the present invention. That is, it goes without saying that various modifications and corrections that can be made by those skilled in the art are included.

本発明の一実施の形態に係るリチウムイオン二次電池の作製方法を示し、図1(a)は電極およびセパレータの積層裁断方法を示す平面図、図1(b)はその正面図。FIGS. 1A and 1B are a plan view and a front view, respectively, illustrating a method for manufacturing a lithium ion secondary battery according to an embodiment of the present invention, in which FIG. 本発明の一実施の形態に係るリチウムイオン二次電池積層体の構造を示し、図2(a)は全体の平面図、図2(b)はその積層状態を示す断面図。The structure of the lithium ion secondary battery laminated body which concerns on one embodiment of this invention is shown, Fig.2 (a) is a whole top view, FIG.2 (b) is sectional drawing which shows the lamination | stacking state. 従来例のリチウムイオン二次電池用の電極積層体を示し、図3(a)はその平面図、図3(b)はその模式的断面図。The electrode laminated body for lithium ion secondary batteries of a prior art example is shown, Fig.3 (a) is the top view, FIG.3 (b) is the typical sectional drawing.

符号の説明Explanation of symbols

1 集電体
2 電極活物質
3 非塗工領域
5 セパレータ
6 電極シート
7 ヒーター付き裁断刃
8 裁断機構
28,38 積層部
41 電極リール
51 ロール状セパレータ
DESCRIPTION OF SYMBOLS 1 Current collector 2 Electrode active material 3 Non-coating area | region 5 Separator 6 Electrode sheet 7 Cutting blade 8 with a heater Cutting mechanism 28,38 Laminating part 41 Electrode reel 51 Roll-shaped separator

Claims (2)

薄板状の集電体に電極活物質が塗布されてなる正負の電極が多孔質セパレータを介して積層された二次電池であって、前記電極活物質は前記集電体の両面に塗布され、前記電極活物質を覆うように多孔質セパレータが重ね合わされ、前記電極及び前記多孔質セパレータは裁断された端部を有し、前記多孔質セパレータの裁断端部は前記電極のうち正負いずれか一方の電極の裁断端部に溶着し、前記多孔質セパレータと前記電極が一体化していることを特徴とする二次電池。 A secondary battery in which a positive and negative electrode formed by applying an electrode active material to a thin plate current collector is laminated via a porous separator, the electrode active material being applied to both surfaces of the current collector, A porous separator is overlaid so as to cover the electrode active material, the electrode and the porous separator have a cut end, and the cut end of the porous separator is one of the positive and negative electrodes of the electrode. A secondary battery welded to a cut end portion of an electrode , wherein the porous separator and the electrode are integrated . 集電体の両面に電極活物質を塗布してなる正負の電極シートを多孔質セパレータを介して積層した二次電池の製造方法であって、帯状集電体の片方の側端部で帯状の部分を露出させ残部に電極活物質を連続的に塗布して帯状電極シートを作製する工程と、正負いずれか一方の帯状電極シートの両面に前記電極活物質を覆うように多孔質セパレータを重ね合わせて帯状の積層配置シートを作製する工程と、前記積層配置シートをヒーター付き打ち抜き刃を使用した裁断機構により前記多孔質セパレータの裁断部が前記電極シートの裁断部に溶着するように裁断する工程とを含むことを特徴とする二次電池の製造方法。   A method of manufacturing a secondary battery in which a positive and negative electrode sheet formed by applying an electrode active material on both sides of a current collector is laminated via a porous separator, wherein the belt-shaped current collector has a belt-like shape at one side end. A step of exposing a part and continuously applying an electrode active material to the remaining part to produce a strip electrode sheet, and a porous separator so as to cover the electrode active material on both sides of either the positive or negative strip electrode sheet A step of producing a belt-like laminated arrangement sheet, and a step of cutting the laminated arrangement sheet so that the cut portion of the porous separator is welded to the cut portion of the electrode sheet by a cutting mechanism using a punching blade with a heater. The manufacturing method of the secondary battery characterized by including.
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