Patent classifications
H01M2300/00
IRON COMPLEXES WITH PHOSPHONATE-BASED LIGANDS AS RFB ANOLYTE MATERIALS
An anolyte for a redox-flow battery (RFB) comprising a metal-ion complex and a phosphonate-based ligand having a phosphonic group wherein the phosphonic acid group is directly coordinated to a metal-ion.
METHOD FOR PREPARING ELECTROLYTE FOR REDOX FLOW BATTERY INCLUDING ORGANIC MOLECULE AS ADDITIVE AND REDOX FLOW BATTERY USING THE SAME
Disclosed is an electrolyte for a redox flow battery including at least one additive selected from the group consisting of a taurine compound and an amino acid compound. Thus, it is possible to provide an electrolyte for a redox flow battery which may have high solubility of active materials, be stable at high temperature or high pH, and show excellent electrochemical properties. In addition, when the electrolyte for a redox flow battery includes a nitrogen (N)-containing organic molecule having high redox activity as an active material, it is possible to realize a high-efficiency demetallized redox flow battery capable of solving the problems of dendrite formation or irreversible precipitation fundamentally.
Method and system for in-silico optimization and design of electrolytes
Owing to complexity of the algorithms and tools very few attempts have been seen for usage of simulation methods in the development of new electrolytes. Moreover, the existing simulation methods focus on only one aspect of the electrolyte at a time and this limits accuracy of simulation results, and affects performance of electrolyte in real world, where multiple factors come into play simultaneously. The method disclosed provides method and system for in-silico optimization and design of electrolytes, enabling prediction of various properties of an electrolytic mixture of salts, solvents and various additives and its suitability for a given battery technology. The in-silico method shapes itself into an overall battery electrolyte property or component composition analyzer based on the user input.
POLYMER, METHOD FOR MANUFACTURING SAME, AND ELECTROLYTE MEMBRANE COMPRISING SAME
The present application relates to a polymer, a method for manufacturing the same, and an electrolyte membrane including the same.
Conversion of lignin to ionic liquids
Disclosed herein are lignin-derived ionic liquids and methods for preparing them. The methods include forming a reaction mixture comprising a lignin-derived starting material, a carbonyl compound, and an amine; maintaining the reaction mixture under conditions sufficient to form a lignin-derived aminophenol; and converting the lignin derived aminophenol to the lignin-derived ionic liquid. Monomeric phenols, oligomeric phenols, and polymeric phenols can be used as lignin-derived starting materials.
Safety system for batteries
A battery, particularly a lithium-metal battery or a lithium-ion battery, having at least one galvanic cell surrounded by a cell housing. To increase the safety of the battery and to close up again a cell opened by a safety device or by a leakage, the inner chamber of the cell housing of the at least one cell includes a first chemical component, a chamber bordering on at least one section of the outer side of the housing including a second chemical component; a solid reaction product being developable by the chemical reaction of the first and second chemical components. The first component is containable in the electrolyte of the cell and the second component in a cooling and/or tempering arrangement. Also described is a cooling and/or tempering arrangement based on it, and an electrolyte, an electrolytic liquid, a safety system, a method and a mobile or stationary system.
HEALING AND MORPHOGENESIS OF STRUCTURAL METAL FOAMS AND OTHER MATRIX MATERIALS
Provided are adaptive materials that include an electrically conductive matrix material defining a plurality of voids; and an electrolyte disposed in at least some of the voids, the electrolyte comprising at least an ion of a first metal. Also provided are related methods of effecting self-healing in the disclosed materials. Further provided are methods of effecting repeated healing in metallic materials.
ELECTROCHEMICAL CELL
An electrochemical cell that converts chemical energy to electrical energy includes a cathode with an active material of fluorinated carbon on a perforated metal cathode current collector, a lithium anode on a perforated metal anode current collector, a stepped header, a stable electrolyte, and a separator. In various embodiments, an anode current collector design, a cathode current collector design, a stepped header design, a cathode formulation, an electrolyte formulation, a separator, and a battery incorporating the electrochemical cell are provided.
ELECTROLYTE COMPOSITIONS
Disclosed are electrolyte compositions for electrochemical devices, where the electrolyte compositions comprise a microemulsion and where the microemulsion comprises an aqueous phase and a water-immiscible phase. Also disclosed are microemulsion electrolyte compositions for electrically rechargeable electrochemical energy storage devices, including ion batteries (such as lithium ion, sodium ion, magnesium ion, calcium ion, and aluminium ion batteries), redox flow batteries and supercapacitors.
NEGATIVE ELECTRODE ELECTROLYTE SOLUTION FOR REDOX FLOW BATTERIES, AND REDOX FLOW BATTERY
A negative electrode electrolyte solution for a redox flow battery includes a negative electrode active material, a negative electrode supporting salt, and a negative electrode solvent, in which the negative electrode solvent is a solvent having an octanol-water partition coefficient Log P.sub.OW expressed by Log P of 1.5 or more.