Patent classifications
H01M2300/0054
Electrolyte for lithium secondary battery, and lithium secondary battery comprising same
Provided are an electrolyte for a lithium secondary battery and a lithium secondary battery including the same wherein the electrolyte includes a non-aqueous organic solvent; a lithium salt; and an additive represented by Chemical Formula 1.
Carbon dioxide electrolysis/carbon fuel cell-integrated apparatus
Provided is a carbon dioxide electrolysis-carbon deposition/carbon fuel cell-integrated apparatus which enable interconversion between electric energy and chemical energy (electrodeposited carbon) through the use of an integrated electrochemical reaction system with a molten salt.
FLAME-RESISTANT QUASI-SOLID AND SOLID-STATE ELECTROLYTES, LITHIUM BATTERIES AND MANUFACTURING METHOD
A rechargeable lithium battery comprising an anode, a cathode, and a quasi-solid or solid-state electrolyte in ionic communication with the anode and the cathode, wherein the electrolyte comprises a polymer, which is a polymerization or crosslinking product of a reactive additive, wherein the reactive additive comprises at least one polymerizable liquid solvent (monomer), a lithium salt dissolved in the polymerizable liquid solvent, and a crosslinking agent and/or an initiator; wherein the polymerizable liquid solvent is selected from the group consisting of fluorinated carbonates, sulfones, sulfides, nitriles, phosphates, phosphites, sulfates, siloxanes, silanes, and combinations thereof; and wherein at least 70% by weight or by volume of the polymerizable liquid solvent is polymerized.
Electrolytic solution for secondary batteries, secondary battery, battery pack, electric vehicle, electric power storage system, electric power tool, and electronic device
A secondary battery includes a positive electrode, a negative electrode, and an electrolytic solution including an unsaturated cyclic compound.
Lithium metal battery including phase transformation layer facing lithium metal negative electrode
Provided is provided a lithium metal battery which includes a composite solid electrolyte membrane interposed between a lithium metal negative electrode and a positive electrode, wherein the composite solid electrolyte membrane includes: a phase transformation layer containing a plasticizer and a lithium salt; a porous polymer sheet layer; and a solid polymer electrolyte layer, the phase transformation layer, the porous polymer sheet layer and the solid polymer electrolyte layer stacked successively, and the phase transformation layer is disposed in such a manner that it faces the lithium metal negative electrode. The lithium metal battery shows reduced resistance at the interface with an electrode and increased ion conductivity, has improved safety, and provides improved energy density of an electrode.
Non-aqueous electrolyte for lithium ion secondary battery and lithium ion secondary battery using same
A non-aqueous electrolyte for a lithium ion secondary battery capable of improving rate characteristics, and the lithium ion secondary battery using the same. The non-aqueous electrolyte for the lithium ion secondary battery includes a carboxylic acid ester and 2.0×10.sup.−6 to 3.0×10.sup.−3 mol/L of halide ion other than fluoride ion.
METHOD TO PROTECT A LITHIUM METAL ANODE IN A RECHARGEABLE LITHIUM METAL BATTERY
A rechargeable metal halide battery fabricated with a liquid nitrogen treated metallic anode demonstrates a stable cycle life with a slow rate of degradation and high discharge capacity in comparison to battery cells with untreated anodes. The anode, which may be an alkali metal and/or an alkaline earth metal, is pretreated with the liquid nitrogen prior to formation in a battery stack. The liquid nitrogen treatment forms a metal nitride on a surface of the anode that (i) increases the surface area of the anode, (ii) acts as a passivation layer that prevents detrimental SEI-forming side reactions that degrade anodes, and (iii) suppresses dendrite growth. Where the anode is lithium, the metal nitride is lithium nitride (Li.sub.3N).
Non-aqueous electrolyte for lithium air batteries, and lithium air battery using the same
The present invention has for its object to provide a non-aqueous electrolyte for lithium air batteries capable of simultaneously holding back positive electrode overvoltage, reactions of the negative electrode with the electrolyte and dendrite growth during charging thereby making an improvement in the output performance, and a lithium air battery using the same. The invention provides a non-aqueous electrolyte for lithium air batteries, containing an organic solvent and a lithium salt. The lithium salt contains at least LiX (where X stands for Br and/or I) and lithium nitrate. The molar concentration (mol/L) of LiX in the non-aqueous electrolyte satisfies a range of no less than 0.005 to no greater than 2.0, and the molar concentration (mol/L) of the lithium nitrate in the non-aqueous electrolyte satisfies a range of greater than 0.1 to no greater than 2.0.
BATTERY ELECTROLYTIC SOLUTION, SECONDARY BATTERY, AND TERMINAL
This application provides a battery electrolytic solution, including an electrolyte salt and a non-aqueous organic solvent. The non-aqueous organic solvent includes a first organic solvent shown in a formula (I) and/or a second organic solvent shown in a formula (II): R.sub.1—S(═O).sub.x—N(—R.sub.3)—R.sub.2 formula (I); and R.sub.1—S(═O).sub.x—N(—R.sub.3)—S(═O).sub.y—R.sub.4 formula (II). R.sub.1 and R.sub.4 are separately selected from fluoroalkyl, fluoroalkoxy, fluoroalkenyl, fluoroalkenyloxy, fluoroaryl, or fluoroaryloxy. R.sub.2 and R.sub.3 are separately selected from alkyl, alkoxy, alkenyl, alkenyloxy, aryl, or aryloxy. x is 1 or 2, and y is 1 or 2. A total content in mass of the first organic solvent and/or the second organic solvent in the electrolytic solution ranges from 10% to 90%. The electrolytic solution includes the first organic solvent and/or the second organic solvent of a high content in mass.
Lithium Deposition and Battery Using Inorganic Molten Salts
A conformable polymer coated lithium metal electrode provides the negative electrode and the solid electrolyte for a rechargeable lithium metal battery that further includes an inorganic molten salt electrolyte having a melting temperature below 140° C. interposed between the conformable polymer coating and a positive electrode. In some embodiments, the conformable polymer is a block or graft copolymer. Optionally, the positive electrode includes elemental sulfur in a conductive matrix. The conformable polymer coated lithium metal electrode may be manufactured by a process involving electroplating lithium metal through a conformable polymer coated conductive substrate. The conformable polymer coated conductive substrate may be prepared by coating the conductive substrate in a conformable polymer solution followed by evaporating the solvent. Alternatively, a lithium metal electrode may be coated directly with conformable polymer.