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Slurry mixing involves combining active materials, conductive additives, binders, and solvents to create a homogeneous electrode slurry mixture<ref>Ayerbe, et al. Adv. Energy Mater. 2022, 12, 2102696. DOI: {{Template:Viewer/Link|page=|url=https://doi.org/10.1002/aenm.202102696|label=10.1002/aenm.202102696}}</ref> | Slurry mixing involves combining active materials, conductive additives, binders, and solvents to create a homogeneous electrode slurry mixture<ref>Ayerbe, et al. Adv. Energy Mater. 2022, 12, 2102696. DOI: {{Template:Viewer/Link|page=|url=https://doi.org/10.1002/aenm.202102696|label=10.1002/aenm.202102696}}</ref> . This slurry is then coated onto a current collector to form the electrode. Proper slurry mixing ensures optimal performance, consistency, and longevity of the batteries. | ||
== Components of the Slurry == | == Components of the Slurry == | ||
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== Mixing Process == | == Mixing Process == | ||
{{#ev:youtube|XQhanrs2BI0|||A video demonstrating the consistency of lithium-ion battery electrode slurry consistency after different stages of mixing}} | |||
=== Preparation === | === Preparation === | ||
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* A grindometer is used to assess the particle size distribution in a battery slurry, which is critical for ensuring uniformity and optimal performance. By measuring how finely the active materials and conductive agents are dispersed, the grindometer helps in determining the slurry’s consistency, which directly impacts the battery's electrochemical properties and cycle life. | * A grindometer is used to assess the particle size distribution in a battery slurry, which is critical for ensuring uniformity and optimal performance. By measuring how finely the active materials and conductive agents are dispersed, the grindometer helps in determining the slurry’s consistency, which directly impacts the battery's electrochemical properties and cycle life. | ||
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