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● Licity® 2698 XF achieves higher coulombic capacity, more charge-discharge cycles, and shorter charge times in silicon-containing systems
● Second-generation adhesive based on styrene-butadiene copolymer chemical system with excellent stress-strain characteristics and elasticity
● Especially suitable for SiOx system and silicon-rich anode active material system
BASF has expanded its range of Licity® anode binders for lithium-ion battery manufacturing
.
The second generation Licity® 2698 XF Styrene Butadiene Emulsion (SBR) adhesive is designed for systems containing silicon (silicon content can reach or exceed 20 wt.
-%)
.
In addition to the existing properties of the Licity® product line, this adhesive helps achieve higher battery capacities, more charge-discharge cycles and shorter charging times
.
In addition, Licity® 2698 XF can be manufactured according to the biomass balance method
.
BASF can incorporate biomass into the production process, and the biomass is transported to the production process of BASF’s binder, and its active ingredients (that is, the renewable raw material part) are finally distributed into the binder products, helping to reduce carbon emissions in the lithium battery manufacturing industry.
row
.
From the raw materials used for Licity® binders to the delivery of the final product, BASF is committed to combining economic goals with environmental and social responsibility
.
Thorsten Habeck, Business Director Fiber Bonding EMEA at BASF, explains: "The global market is currently accelerating the transition from diesel locomotives to electric vehicles
.
The use of our new binder, Licity® 2698 XF, helps overcome EVs The technical difficulties of using mileage and charging time
.
”
About Licity®
About Licity®Licity® binders are designed to overcome the limitations of widespread lithium-ion battery applications
.
This type of water-based binder has high colloidal stability, good compatibility with CMC, and excellent coating processability
.
In addition, Licity® anode binder has high peel strength, excellent electrolyte resistance and electrochemical properties
.