JPH1027597A - Non-aqueous electrolyte secondary battery - Google Patents
Non-aqueous electrolyte secondary batteryInfo
- Publication number
- JPH1027597A JPH1027597A JP8180320A JP18032096A JPH1027597A JP H1027597 A JPH1027597 A JP H1027597A JP 8180320 A JP8180320 A JP 8180320A JP 18032096 A JP18032096 A JP 18032096A JP H1027597 A JPH1027597 A JP H1027597A
- Authority
- JP
- Japan
- Prior art keywords
- aqueous electrolyte
- sec
- secondary battery
- microporous membrane
- air permeability
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Granted
Links
Classifications
-
- Y—GENERAL 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
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E60/00—Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
- Y02E60/10—Energy storage using batteries
-
- Y—GENERAL 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
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02P—CLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
- Y02P70/00—Climate change mitigation technologies in the production process for final industrial or consumer products
- Y02P70/50—Manufacturing or production processes characterised by the final manufactured product
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- Secondary Cells (AREA)
Abstract
(57)【要約】
【課題】 非水電解液二次電池において、従来の電流特
性を維持し、かつ短絡時の安全性に優れた非水電解液二
次電池を提供することを目的とする。
【解決手段】 セパレータ5は、透気度が400sec
/100cc以上1500sec/100cc以下のポ
リエチレン単体の微多孔性膜か、もしくはポリエチレン
を含むポリオレフィン複合微多孔性膜であって、しかも
透気度が100000sec/100ccになる閉塞温
度において、収縮率が50%以下であるものを用いるこ
とにより、従来の電流特性を維持し、かつ短絡時の安全
性に優れた非水電解液二次電池が得られる。
PROBLEM TO BE SOLVED: To provide a non-aqueous electrolyte secondary battery which maintains the current characteristics of a conventional non-aqueous electrolyte secondary battery and is excellent in safety at the time of short circuit. . The separator has an air permeability of 400 seconds.
A microporous membrane of polyethylene alone / 100 cc or more and 1500 sec / 100 cc or less, or a polyolefin composite microporous membrane containing polyethylene, and a shrinkage rate of 50% at a closing temperature at which the air permeability becomes 100000 sec / 100 cc. By using the following, a non-aqueous electrolyte secondary battery that maintains the current characteristics of the related art and is excellent in safety during a short circuit can be obtained.
Description
【0001】[0001]
【発明の属する技術分野】本発明は、非水電解液二次電
池に関するものである。BACKGROUND OF THE INVENTION 1. Field of the Invention The present invention relates to a non-aqueous electrolyte secondary battery.
【0002】[0002]
【従来の技術】近年、AV機器あるいはパソコン等の電
子機器のポータブル化,コードレス化が急速に進んでお
り、これらの駆動用電源として小型,軽量で高エネルギ
ー密度を有する二次電池への要望が高い。このような点
で非水系二次電池、特に高電圧,高エネルギー密度を有
する非水電解液リチウム二次電池への期待が大きい。2. Description of the Related Art In recent years, portable and cordless electronic devices such as AV devices and personal computers have been rapidly advanced, and there is a demand for a small, lightweight, high energy density secondary battery as a power supply for driving these devices. high. In this respect, there is great expectation for non-aqueous secondary batteries, especially non-aqueous electrolyte lithium secondary batteries having high voltage and high energy density.
【0003】リチウム二次電池で高エネルギー密度が期
待される理由としては、適切な正極、すなわち高い電位
を有する正極を選択することによって、高電圧で高エネ
ルギー密度が得られるというところにある。この要望を
満たすものとしてLiCoO 2 やLiMn2O4 系のお
よそ4Vの高電圧を示す材料が挙げられる。一方、負極
としては金属リチウムをはじめリチウム合金やリチウム
イオンを吸蔵,放出できる炭素材料等が検討されている
が、金属リチウムには充放電に伴う、デンドライトとい
われる樹脂状生成物による短絡の問題がそれぞれあり、
これらの問題の生じない炭素材がリチウム二次電池とし
て、有望視されている。[0003] High energy density is expected for lithium secondary batteries.
The reason for this is that a suitable positive electrode,
By selecting a positive electrode with high voltage, high voltage and high energy
The point is that you can obtain a high density. This request
LiCoO as filling TwoAnd LiMnTwoOFourOf the system
A material exhibiting a high voltage of about 4 V may be used. Meanwhile, the negative electrode
As metal lithium, lithium alloys and lithium
Carbon materials that can store and release ions are being studied
However, metallic lithium is called a dendrite due to charging and discharging.
There is a problem of short circuit due to resinous products,
Carbon materials that do not cause these problems are lithium secondary batteries.
It is promising.
【0004】リチウム二次電池等の非水電解液を用いる
電池では非水電解液の電導度が水溶液系の電解液の電導
度の1/10程度しかないため、一般に電流が取り出し
難い。さらに、非水電解液二次電池の極板は水溶液系の
二次電池と同等の電流特性をもたせるため、薄くかつ長
く作られ、電極面積を大きくしている。そうした場合、
安全性に問題を生じる。非水電解液の溶媒には有機溶媒
がよく用いられるため、電池が何らかの原因で短絡状態
に陥った時、電池内部は大きな短絡電流によるジュール
熱で熱せられ、その熱による種々の化学反応および熱暴
走を引き起こし発火さらには爆発といった事態にまでな
ることがある。In a battery using a non-aqueous electrolyte such as a lithium secondary battery, the conductivity of the non-aqueous electrolyte is only about 1/10 of the conductivity of the aqueous electrolyte, so that it is generally difficult to extract a current. Further, the electrode plate of the non-aqueous electrolyte secondary battery is made thin and long so as to have current characteristics equivalent to those of the aqueous secondary battery, and the electrode area is increased. If you do,
Causes safety issues. Since an organic solvent is often used as a solvent for the non-aqueous electrolyte, when the battery is short-circuited for some reason, the inside of the battery is heated by Joule heat due to a large short-circuit current, and various chemical reactions and heat caused by the heat are generated. It can cause a runaway and result in a fire or even an explosion.
【0005】特に、正極活物質にLiCoO2 やLiM
n2O4 系のおよそ4Vの高電圧を示す材料を用いると
電位差が大きいため、さらに短絡電流が大きくなり安全
性が低下する。In particular, LiCoO 2 or LiM
When an n 2 O 4 -based material showing a high voltage of about 4 V is used, the potential difference is large, so that the short-circuit current is further increased and safety is reduced.
【0006】これらの問題点を解決するため、110〜
130℃近くの温度で熱溶融により自ら微孔を閉じて多
孔性を消失し、電流遮断するいわゆるシャットダウン機
能をもったポリエチレン製の多孔質膜や、ポリエチレン
とポリプロピレンのような層構造を有するポリオレフィ
ン複合多孔質膜がセパレータとしてよく用いられてい
る。In order to solve these problems, 110-110
Polyethylene composite with a so-called shutdown porous function, which has a so-called shutdown function that closes micropores by heat melting at a temperature near 130 ° C and loses porosity by itself, or a layer structure such as polyethylene and polypropylene Porous membranes are often used as separators.
【0007】[0007]
【発明が解決しようとする課題】しかし、ポリエチレン
単体の多孔性膜やポリエチレンを含むポリオレフィン複
合微多孔性膜は、孔の熱閉塞温度であるシャットダウン
温度付近になると著しい熱収縮を伴う。そして、収縮が
著しい場合、短絡時にセパレータがシャットダウンして
も、その収縮のために極板群に変形を与え、正極板と負
極板が接触し、再び短絡状態となり安全性が低下する。However, a porous membrane of polyethylene alone or a microporous polyolefin composite membrane containing polyethylene is accompanied by a remarkable thermal shrinkage when the temperature becomes close to a shutdown temperature, which is a heat closing temperature of pores. If the contraction is remarkable, even if the separator is shut down at the time of short circuit, the electrode group is deformed due to the contraction, and the positive electrode plate and the negative electrode plate come into contact with each other, resulting in a short-circuit state again and a decrease in safety.
【0008】本発明は、従来の電流特性を維持し、かつ
短絡時の安全性に優れた非水電解液二次電池を提供する
ことを課題とするものである。An object of the present invention is to provide a non-aqueous electrolyte secondary battery which maintains the conventional current characteristics and is excellent in safety at the time of short circuit.
【0009】[0009]
【課題を解決するための手段】本発明の非水電解液二次
電池は、そのセパレータにポリエチレン単体の微多孔性
膜か、もしくはポリエチレンを含むポリオレフィン複合
微多孔性膜であって、前記単体の微多孔性膜も前記複合
微多孔性膜もその透気度が400sec/100cc以
上1500sec/100cc以下で、しかも透気度が
100000sec/100ccになる温度において、
収縮率が50%以下であるものを使用して前記課題を解
決したものである。The non-aqueous electrolyte secondary battery according to the present invention is characterized in that the separator is a polyethylene microporous membrane or a polyolefin composite microporous membrane containing polyethylene. At a temperature at which the air permeability of both the microporous membrane and the composite microporous membrane is 400 sec / 100 cc or more and 1500 sec / 100 cc and the air permeability is 100000 sec / 100 cc,
The object has been achieved by using a material having a shrinkage of 50% or less.
【0010】[0010]
【発明の実施の形態】本発明は請求項1に記載のよう
に、透気度が400sec/100cc以上1500s
ec/100cc以下のポリエチレン単体の微多孔性膜
か、もしくはポリエチレンを含むポリオレフィン複合微
多孔性膜のいずれかであって、しかも透気度が1000
00sec/100ccになる温度において、収縮率が
50%以下であるセパレータを用いることにより、短絡
時の安全性に優れた非水電解液二次電池を提供できる。BEST MODE FOR CARRYING OUT THE INVENTION According to the present invention, the air permeability is 400 sec / 100 cc or more and 1500 s.
ec / 100 cc or less of a polyethylene single microporous membrane or a polyethylene-containing polyolefin composite microporous membrane and having an air permeability of 1000
By using a separator having a shrinkage of 50% or less at a temperature of 00 sec / 100 cc, a non-aqueous electrolyte secondary battery with excellent short-circuit safety can be provided.
【0011】[0011]
【実施例】以下、図面とともに本発明について具体的な
説明をする。本実施例においては、円筒形電池を構成し
て評価を行った。BRIEF DESCRIPTION OF THE DRAWINGS FIG. In this example, a cylindrical battery was constructed and evaluated.
【0012】図1にその円筒形電池の縦断面図を示す。
図において、1は正極で、リチウム複合酸化物の一例で
あるLiCoO2 を活物質とし、電導材としてカーボン
ブラックを結着剤としてポリ4フッ化エチレンの水性デ
イスパージョンを重量比で100:4:7の割合で混合
したものをアルミニウム箔の両面に塗着,乾燥し、圧延
した後、所定の大きさに切断したものである。そして、
この正極1にはチタン製の正極リード板2をスポット溶
接している。なお、結着剤のポリ4フッ化エチレンの水
性デイスパージョンの混合比率は、その固形分で計算し
ている。3は負極で、炭素質材料とフッ素系結着剤とを
重量比で100:5の割合で混合したものを銅箔の両面
に塗着,乾燥し、圧延した後、所定の大きさに切断した
ものである。この負極3にも銅製の負極リード板4をス
ポット溶接している。5はセパレータで、正極1と負極
3との間に介在し、全体が渦巻状に巻回されて極板群を
構成している。この極板群の上下それぞれにポリプロピ
レン製の上部絶縁板6および下部絶縁板7を配設して鉄
にニッケルメッキを施したケース8に挿入し、正極リー
ド2をチタン製の封口板9に、負極リード4をケース8
の底部にそれぞれスポット溶接した後、エチレンカーボ
ネートとエチルメチルカーボネートとの体積比1:1の
混合溶媒に1モルのLiPF6 を溶解させた電解液を注
入し、カズケット10を介して電池を封口して完成電池
とする。この電池の寸法は直径17mm,高さ50mm
である。11は電池の正極端子であり、負極端子は電池
ケース8がこれを兼ねている。FIG. 1 is a longitudinal sectional view of the cylindrical battery.
In the figure, reference numeral 1 denotes a positive electrode, LiCoO 2 , which is an example of a lithium composite oxide, as an active material, and an aqueous dispersion of polytetrafluoroethylene in a weight ratio of 100: 4 using carbon black as a binder as a conductive material. : A mixture mixed at a ratio of 7 was applied to both sides of an aluminum foil, dried, rolled, and then cut into a predetermined size. And
A positive electrode lead plate 2 made of titanium is spot-welded to the positive electrode 1. The mixing ratio of the aqueous dispersion of polytetrafluoroethylene as the binder is calculated based on the solid content. Reference numeral 3 denotes a negative electrode, which is a mixture of a carbonaceous material and a fluorine-based binder at a weight ratio of 100: 5, applied to both sides of a copper foil, dried, rolled, and cut into a predetermined size. It was done. The negative electrode 3 is also spot-welded with a negative electrode lead plate 4 made of copper. Reference numeral 5 denotes a separator, which is interposed between the positive electrode 1 and the negative electrode 3, and is entirely spirally wound to form an electrode plate group. An upper insulating plate 6 and a lower insulating plate 7 made of polypropylene are arranged on the upper and lower sides of the electrode plate group, respectively, inserted into a case 8 in which nickel is plated on iron, and the positive electrode lead 2 is inserted into a sealing plate 9 made of titanium. Negative lead 4 in case 8
After spot welding to the bottom of each, an electrolytic solution in which 1 mol of LiPF 6 was dissolved in a mixed solvent of ethylene carbonate and ethyl methyl carbonate at a volume ratio of 1: 1 was injected, and the battery was sealed via a pocket 10. To complete batteries. The dimensions of this battery are 17mm in diameter and 50mm in height.
It is. Reference numeral 11 denotes a positive electrode terminal of the battery, and the battery case 8 also serves as a negative electrode terminal.
【0013】セパレータには、表1に示すように原反樹
脂の延伸率を変化させて得られた100sec/100
ccないし1700sec/100ccの透気度をもつ
ポリエチレン単体の微多孔性膜を所定の寸法に切断した
ものをセパレータAないしGとし、およびこれらの微多
孔性膜を100℃で24時間熱処理を行った後、所定の
寸法に切断したものをセパレータA’ないしG’とし
た。セパレータの透気度が100000sec/100
ccになる温度を孔の閉塞温度(以下、閉塞温度と称す
る)とし、その温度でのセパレータの収縮率を表1,表
2に示す。[0013] As shown in Table 1, a separator was prepared by changing the stretching ratio of the raw resin to 100 sec / 100.
Separators A to G were obtained by cutting a microporous membrane made of polyethylene alone having a gas permeability of cc to 1700 sec / 100 cc into predetermined dimensions, and these microporous membranes were subjected to a heat treatment at 100 ° C. for 24 hours. After that, those cut into predetermined dimensions were used as separators A 'to G'. The air permeability of the separator is 100,000 sec / 100
The temperature at which cc is reached is defined as the pore closing temperature (hereinafter referred to as the closing temperature), and Table 1 and Table 2 show the separator shrinkage at that temperature.
【0014】[0014]
【表1】 [Table 1]
【0015】[0015]
【表2】 [Table 2]
【0016】表1と表2を比較すると各セパレータを1
00℃にて24時間熱処理をすることにより、若干の透
気度の増加を伴うものの、閉塞温度での収縮率が大幅に
低下するのがみられた。A comparison between Tables 1 and 2 shows that each separator is 1
The heat treatment at 00 ° C. for 24 hours was accompanied by a slight increase in air permeability, but a significant decrease in the shrinkage at the closing temperature was observed.
【0017】なお、ここでの透気度はASTMのD72
6,方法Aに基づき膜面積6.4cm2 ,圧力124m
mH2Oにおける100ccの空気が通過するに要する
時間(sec)で計測したものである。また、収縮率の
測定はセパレータ単体を閉塞温度で10分間熱処理を行
い、面積変化により算出を行った。The air permeability here is ASTM D72.
6, based on method A, membrane area 6.4 cm 2 , pressure 124 m
It is measured by the time (sec) required for 100 cc of air to pass through in mH 2 O. The shrinkage was measured by subjecting the separator alone to a heat treatment at a closing temperature for 10 minutes and calculating the change in area.
【0018】作成した円筒電池は、20℃の環境下で、
充放電電流を750mA,充電終止電圧を4.2V,放
電終止電圧3.0Vの定電流充放電を10サイクル繰り
返し充電状態で止め、室温で短絡試験を行った。10サ
イクル目の放電容量および短絡試験の結果を表3,表4
に示した。The produced cylindrical battery is placed in an environment of 20 ° C.
The charge / discharge current was 750 mA, the charge end voltage was 4.2 V, and the constant current charge / discharge at the discharge end voltage 3.0 V was repeated 10 cycles, stopped in the charged state, and a short circuit test was performed at room temperature. Tables 3 and 4 show the discharge capacity at the 10th cycle and the results of the short-circuit test.
It was shown to.
【0019】[0019]
【表3】 [Table 3]
【0020】[0020]
【表4】 [Table 4]
【0021】表3からわかるように、セパレータA,
B,C,D,Eを用いた電池は、短絡試験において電池
表面温度が135℃以上になり、封口部からガスの噴出
があった。短絡試験後、X線CTスキャンにて極板群の
観察を行ったが、セパレータA,B,C,D,Eを用い
た電池では、極板群の変形がみられ、正負極板が接触し
再短絡が生じているのが確認できた。セパレータF,G
を用いた電池では、極板群の変形はみられず、正負極板
の接触箇所は確認できなかった。As can be seen from Table 3, the separators A,
In the batteries using B, C, D, and E, the battery surface temperature became 135 ° C. or higher in the short-circuit test, and gas was ejected from the sealing portion. After the short-circuit test, the electrode group was observed by X-ray CT scan. However, in the batteries using separators A, B, C, D, and E, the electrode group was deformed, and the positive and negative electrode plates were in contact. It was confirmed that a short circuit occurred again. Separator F, G
In the battery using, no deformation of the electrode plate group was observed, and no contact portion between the positive and negative electrode plates could be confirmed.
【0022】セパレータA,B,C,D,Eはセパレー
タF,Gに比べて、閉塞温度における収縮率が大きいた
め、その収縮により極板群に変形を与え、正負極板が接
触し再短絡が生じたためと考えられる。短絡時の発熱の
際に、極板群に変形を与えず、正負極板の接触による再
短絡を防ぐには、閉塞温度における収縮率が50%以下
であるセパレータを用いるのが望ましいことがわかる。Since the separators A, B, C, D, and E have a higher shrinkage at the closing temperature than the separators F and G, the shrinkage causes deformation of the electrode plate group, and the positive and negative electrode plates come into contact and re-short-circuit. It is considered that this occurred. It can be seen that it is desirable to use a separator having a shrinkage ratio of 50% or less at the closing temperature in order to prevent the electrode group from being deformed during the heat generation during a short circuit and to prevent the re-short circuit due to the contact of the positive and negative electrodes with each other. .
【0023】次に表4からわかるように、透気度が20
0sec/100ccのセパレータA’を用いた電池
は、短絡試験において電池表面温度が131℃になっ
た。短絡試験後、X線CTスキャンにて極板群の観察を
行ったが、極板群の変形はみられず、正負極板の接触箇
所は確認できなかった。Next, as can be seen from Table 4, the air permeability is 20
The battery using the 0 sec / 100 cc separator A 'had a battery surface temperature of 131 ° C. in the short-circuit test. After the short-circuit test, the electrode group was observed by an X-ray CT scan, but no deformation of the electrode group was observed, and no contact point between the positive and negative electrode plates was confirmed.
【0024】セパレータA’と閉塞温度における収縮率
が同じ50%であるセパレータB’,Fを用いた電池の
短絡挙動を図2に示す。FIG. 2 shows the short-circuit behavior of a battery using separators B ′ and F having the same 50% shrinkage at the closing temperature as that of the separator A ′.
【0025】図2からわかるように、セパレータA’は
透気度が低いため短絡電流が大きく、そのためジュール
熱も大きくなり、電池内部で急激な発熱が生じ、熱暴走
に至ったと考えられる。As can be seen from FIG. 2, it is considered that the separator A ′ has a low air permeability and therefore a large short-circuit current, which also increases the Joule heat, causing rapid heat generation inside the battery, leading to thermal runaway.
【0026】以上より、透気度が400sec/100
cc以上でポリエチレン単体の微多孔性膜で透気度が1
00000sec/100ccになる閉塞温度におい
て、収縮率が50%以下であるセパレータを用いること
により、短絡時の安全性に優れていることがわかる。As described above, the air permeability is 400 sec / 100
Above 1 cc, air permeability is 1 with a polyethylene microporous membrane
It can be seen that by using a separator having a shrinkage ratio of 50% or less at a closing temperature of 00000 sec / 100 cc, safety in a short circuit is excellent.
【0027】次に表3,表4より、10サイクル目の放
電容量を比べると、透気度が1600sec/100c
c以上になると、著しく低下することがわかる。Next, from Tables 3 and 4, when comparing the discharge capacity at the 10th cycle, the air permeability is 1600 sec / 100c.
It can be seen that when it exceeds c, it is significantly reduced.
【0028】これらの結果から、セパレータには透気度
が400sec/100cc以上1500sec/10
0cc以下のポリエチレン単体の微多孔性膜で、透気度
が100000sec/100ccになる閉塞温度にお
いて、収縮率が50%以下であるものを用いるのが望ま
しいことがわかる。From these results, the separator has an air permeability of 400 sec / 100 cc or more and 1500 sec / 10
It can be seen that it is desirable to use a microporous membrane made of polyethylene alone of 0 cc or less and having a shrinkage of 50% or less at a closing temperature at which the air permeability becomes 100000 sec / 100 cc.
【0029】なお、本実施例ではセパレータにポリエチ
レン単体の微多孔性膜を用いたが、ポリエチレンを含む
ポリオレフィン複合多孔性膜でも同様な結果が得られ
た。In the present embodiment, a microporous membrane of polyethylene alone was used as the separator, but similar results were obtained with a polyolefin composite porous membrane containing polyethylene.
【0030】[0030]
【発明の効果】以上の説明から明らかなように、本発明
は短絡時の安全性に優れた非水電解液二次電池を提供で
きる。As is apparent from the above description, the present invention can provide a non-aqueous electrolyte secondary battery excellent in safety at the time of short circuit.
【図1】本発明の実施例における円筒形電池の縦断面図FIG. 1 is a longitudinal sectional view of a cylindrical battery according to an embodiment of the present invention.
【図2】本発明の実施例における短絡試験時の挙動を示
す図FIG. 2 is a diagram showing a behavior during a short-circuit test in an example of the present invention.
1 正極 2 正極リード板 3 負極 4 負極リード板 5 セパレータ 6 上部絶縁板 7 下部絶縁板 8 ケース 9 封口板 10 ガスケット 11 正極端子 DESCRIPTION OF SYMBOLS 1 Positive electrode 2 Positive electrode lead plate 3 Negative electrode 4 Negative electrode lead plate 5 Separator 6 Upper insulating plate 7 Lower insulating plate 8 Case 9 Sealing plate 10 Gasket 11 Positive electrode terminal
───────────────────────────────────────────────────── フロントページの続き (72)発明者 濱田 正晴 大阪府門真市大字門真1006番地 松下電器 産業株式会社内 ──────────────────────────────────────────────────続 き Continuing on the front page (72) Inventor Masaharu Hamada 1006 Kazuma Kadoma, Kadoma City, Osaka Matsushita Electric Industrial Co., Ltd.
Claims (1)
素材料からなる負極との間に、非水電解液を含浸保持し
たセパレータを介在して渦巻状に巻回した電極体を備
え、前記セパレータはポリエチレン単体の微多孔性膜
か、もしくはポリエチレンを含むポリオレフィン複合微
多孔性膜であって、前記単体の微多孔性膜も前記複合微
多孔性膜もその透気度が400sec/100cc以上
1500sec/100cc以下で、しかも透気度が1
00000sec/100ccになる温度において、収
縮率が50%以下であるものを用いることを特徴とする
非水電解液二次電池。An electrode body spirally wound with a separator impregnated with a non-aqueous electrolyte interposed between a positive electrode made of a lithium composite oxide and a negative electrode made of a carbon material; Is a microporous membrane of polyethylene alone or a polyolefin composite microporous membrane containing polyethylene, and the air permeability of both the simple microporous membrane and the composite microporous membrane is 400 sec / 100 cc or more and 1500 sec / 100cc or less and air permeability of 1
A non-aqueous electrolyte secondary battery, wherein a battery having a shrinkage of 50% or less at a temperature of 00000 sec / 100 cc is used.
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP18032096A JP3307231B2 (en) | 1996-07-10 | 1996-07-10 | Non-aqueous electrolyte secondary battery |
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP18032096A JP3307231B2 (en) | 1996-07-10 | 1996-07-10 | Non-aqueous electrolyte secondary battery |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| JPH1027597A true JPH1027597A (en) | 1998-01-27 |
| JP3307231B2 JP3307231B2 (en) | 2002-07-24 |
Family
ID=16081158
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| JP18032096A Expired - Fee Related JP3307231B2 (en) | 1996-07-10 | 1996-07-10 | Non-aqueous electrolyte secondary battery |
Country Status (1)
| Country | Link |
|---|---|
| JP (1) | JP3307231B2 (en) |
Cited By (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2002260627A (en) * | 2001-03-05 | 2002-09-13 | Matsushita Electric Ind Co Ltd | Non-aqueous electrolyte secondary battery |
| JP2002289164A (en) * | 2001-03-28 | 2002-10-04 | Matsushita Electric Ind Co Ltd | Non-aqueous electrolyte secondary battery |
| JP2024543428A (en) * | 2021-12-24 | 2024-11-21 | エルジー エナジー ソリューション リミテッド | Lithium secondary battery and method for producing the same |
Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JPH04237971A (en) * | 1990-09-03 | 1992-08-26 | Matsushita Electric Ind Co Ltd | Non-aqueous electrolyte secondary battery |
| JPH04332479A (en) * | 1991-05-02 | 1992-11-19 | Sony Corp | Nonaqueous electrolyte secondary battery |
| JPH05310989A (en) * | 1992-04-30 | 1993-11-22 | Mitsubishi Kasei Corp | Polyethylene porous membrane |
| JPH0729563A (en) * | 1993-05-11 | 1995-01-31 | Mitsubishi Chem Corp | Battery separator and lithium battery using the same |
| JPH08171934A (en) * | 1994-12-16 | 1996-07-02 | Sanyo Electric Co Ltd | Lithium secondary battery |
-
1996
- 1996-07-10 JP JP18032096A patent/JP3307231B2/en not_active Expired - Fee Related
Patent Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JPH04237971A (en) * | 1990-09-03 | 1992-08-26 | Matsushita Electric Ind Co Ltd | Non-aqueous electrolyte secondary battery |
| JPH04332479A (en) * | 1991-05-02 | 1992-11-19 | Sony Corp | Nonaqueous electrolyte secondary battery |
| JPH05310989A (en) * | 1992-04-30 | 1993-11-22 | Mitsubishi Kasei Corp | Polyethylene porous membrane |
| JPH0729563A (en) * | 1993-05-11 | 1995-01-31 | Mitsubishi Chem Corp | Battery separator and lithium battery using the same |
| JPH08171934A (en) * | 1994-12-16 | 1996-07-02 | Sanyo Electric Co Ltd | Lithium secondary battery |
Cited By (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2002260627A (en) * | 2001-03-05 | 2002-09-13 | Matsushita Electric Ind Co Ltd | Non-aqueous electrolyte secondary battery |
| JP2002289164A (en) * | 2001-03-28 | 2002-10-04 | Matsushita Electric Ind Co Ltd | Non-aqueous electrolyte secondary battery |
| JP2024543428A (en) * | 2021-12-24 | 2024-11-21 | エルジー エナジー ソリューション リミテッド | Lithium secondary battery and method for producing the same |
Also Published As
| Publication number | Publication date |
|---|---|
| JP3307231B2 (en) | 2002-07-24 |
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