US2010167131A1PendingUtilityA1

Non-Aqueous Electrolyte and Electrochemical Device With an Improved Safety

Assignee: LG CHEMICAL LTDPriority: Feb 15, 2006Filed: Feb 15, 2007Published: Jul 1, 2010
Est. expiryFeb 15, 2026(expired)· nominal 20-yr term from priority
H01M 10/0567H01M 10/05Y02E60/10H01M 10/0569H01M 10/058H01M 2300/0028H01M 2300/0025Y02P70/50H01M 10/0568H01M 2220/30H01M 2300/0037H01M 10/0525
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Claims

Abstract

Disclosed are a non-aqueous electrolyte comprising a lithium salt and a solvent, the electrolyte containing, based on the weight of the electrolyte, 1-10 wt % of a compound of Formula (1) or its decomposition product, and 1-10 wt % of an aliphatic di-nitrile compound, as well as an electrochemical device comprising the non-aqueous electrolyte. Also disclosed is an electrochemical device comprising: a cathode having a complex formed between a surface of a cathode active material and an aliphatic di-nitrile compound; and a non-aqueous electrolyte containing 1-10 wt % of a compound of Formula (1) or its decomposition product based on the weight of the electrolyte.

Claims

exact text as granted — not AI-modified
1 . A non-aqueous electrolyte comprising a lithium salt and a solvent, the electrolyte containing, based on the weight of the electrolyte, 1-10 wt % of a compound of Formula 1 or its decomposition product, and 1-10 wt % of an aliphatic di-nitrile compound: 
     
       
         
         
             
             
         
       
       wherein X and Y are each independently hydrogen, chlorine or fluorine, provided that both X and Y are not hydrogen. 
     
   
   
       2 . The non-aqueous electrolyte of  claim 1 , wherein the aliphatic di-nitrile compound is represented by Formula 2:
   N≡C—R—C≡N  [Formula 2]   wherein R is (CH 2 ) n  (n is an integer of 2-12).   
   
   
       3 . The non-aqueous electrolyte of  claim 1 , wherein the aliphatic di-nitrile compound is succinonitrile. 
   
   
       4 . The non-aqueous electrolyte of  claim 1 , wherein the solvent includes either or both of at least one cyclic carbonate selected from the group consisting of ethylene carbonate (EC), propylene carbonate (PC) and gamma-butyrolactone (GBL), and at least one linear carbonate selected from the group consisting of diethyl carbonate (DEC), dimethyl carbonate (DMC), ethyl methyl carbonate (EMC) and methyl propyl carbonate (MPC). 
   
   
       5 . The non-aqueous electrolyte of  claim 1 , wherein an aliphatic mono-nitrile compound is further added to the electrolyte. 
   
   
       6 . The non-aqueous electrolyte of  claim 1 , wherein a compound selected from alkylene compounds, sulfur-containing compounds and lactam-based compounds, which can form a passivation layer on an anode surface, is further added to the electrolyte. 
   
   
       7 . An electrochemical device comprising a cathode, an anode, and the non-aqueous electrolyte according to  claim 1 ,
 wherein the non-aqueous electrolyte comprises a lithium salt and a solvent, the electrolyte containing, based on the weight of the electrolyte, 1-10 wt % of a compound of Formula 1 or its decomposition product, and 1-10 wt % of an aliphatic di-nitrile compound:   
     
       
         
         
             
             
         
       
       wherein X and Y are each independently hydrogen, chlorine or fluorine, provided that both X and Y are not hydrogen. 
     
   
   
       8 . An electrochemical device comprising: a cathode having a complex formed between a surface of a cathode active material and an aliphatic di-nitrile compound; and a non-aqueous electrolyte containing 1-10 wt % of a compound of Formula 1 or its decomposition product based on the weight of the electrolyte: 
     
       
         
         
             
             
         
       
       wherein X and Y are each independently hydrogen, chlorine or fluorine, provided that both X and Y are not hydrogen. 
     
   
   
       9 . The electrochemical device of  claim 8 , wherein the aliphatic di-nitrile compound is represented by Formula 2:
   N≡C—R—C≡N  [Formula 2]   wherein R is (CH 2 ) n  (n is an integer of 2-12).   
   
   
       10 . The electrochemical device of  claim 8 , the complex between the cathode active material surface and the aliphatic di-nitrile compound is formed either by high-temperature treating the electrochemical device manufactured from an electrolyte containing the aliphatic di-nitrile compound added thereto, or by dipping the cathode, comprising the cathode active material coated on a collector, into the electrolyte containing the aliphatic di-nitrile compound added thereto, followed by heat treatment at high temperature. 
   
   
       11 . The electrochemical device of  claim 10 , wherein the high-temperature treatment is performed at a temperature of 30° C. or more before or after assemblage of the electrochemical device. 
   
   
       12 . The electrochemical device of  claim 8 , wherein the aliphatic di-nitrile compound is succinonitrile. 
   
   
       13 . The electrochemical device of  claim 7 , wherein the aliphatic di-nitrile compound is represented by Formula 2:
   N≡C—R—C≡N  [Formula 2]   wherein R is (CH 2 ) n , where n is an integer of 2-12.   
   
   
       14 . The electrochemical device of  claim 7 , wherein the aliphatic di-nitrile compound is succinonitrile. 
   
   
       15 . The electrochemical device of  claim 7 , wherein the solvent includes either or both of at least one cyclic carbonate selected from the group consisting of ethylene carbonate (EC), propylene carbonate (PC) and gamma-butyrolactone (GBL), and at least one linear carbonate selected from the group consisting of diethyl carbonate (DEC), dimethyl carbonate (DMC), ethyl methyl carbonate (EMC) and methyl propyl carbonate (MPC). 
   
   
       16 . The electrochemical device of  claim 7 , wherein an aliphatic mono-nitrile compound is further added to the electrolyte. 
   
   
       17 . The electrochemical device of  claim 7 , wherein a compound selected from alkylene compounds, sulfur-containing compounds and lactam-based compounds, which can form a passivation layer on an anode surface, is further added to the electrolyte.

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