LATP (Li1.5Al0.5Ti1.5(PO4)3) Oxide Solid-State Electrolyte Powder,600nmOxide Solid-State Electrolytes
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This oxide solid-state electrolyte powder requires storage in a sealed container in a cool, dry environment to maintain moisture content below 2000 ppm. Processing must consider particle size selection for the intended application, with compatibility verified for NCM and LCO cathodes and polymer-ceramic composite systems.
- Moisture Control: Store sealed in a cool, dry environment and reseal promptly after use to prevent moisture uptake.
- Particle Size Selection: Select the appropriate particle size grade (5 µm, 600 nm, or 300 nm) based on whether the target application is ceramic pellets, composite films, or high-loading composite electrodes.
- Cathode Compatibility: This electrolyte is compatible with NCM and LCO cathodes, enabling use in all-solid-state battery research without additional barrier layers.
- Handling: Basic handling does not require a glovebox, but the powder should be kept away from prolonged exposure to ambient humidity.
- Shelf Life: The sealed product has a one-year shelf life when stored under recommended conditions.
How does the ionic conductivity of LATP (600 nm) solid-state electrolyte powder compare to sulfide electrolytes, and what advantage does its air stability provide?
LATP (600 nm) has an ionic conductivity of ≥10⁻⁴ S/cm at 25°C, which is lower than typical sulfide electrolytes (∼10⁻³ S/cm), but it is air-stable and does not require a glovebox for basic handling. This makes it significantly easier to process and integrate into polymer-ceramic composite systems, as noted in the product description.
Is LATP (600 nm) compatible with high-voltage cathodes like NCM and LCO, and what particle-size advantages does the 600 nm grade offer for composite cathodes?
Yes, LATP is explicitly compatible with NCM and LCO cathodes and polymer-ceramic composite systems. The 600 nm particle size (D50 600±100 nm) is specifically suited for high-loading composite cathodes, enabling finer particle packing and improved interfacial contact compared to coarser grades.
What are the storage and handling requirements for LATP (600 nm) powder, and does it require a glovebox?
LATP (600 nm) is air-stable and does not require a glovebox for basic handling, unlike sulfide electrolytes. However, it has a moisture specification of <2000 ppm, so it must be stored sealed in a cool, dry environment, protected from moisture. The product delivers a 1-year shelf life when sealed and resealed promptly after use.
This LATP solid-state electrolyte powder with 600 nm D50 particle size offers air-stable handling and ≥10⁻⁴ S/cm ionic conductivity, but requires moisture-controlled storage and has a 1-year sealed shelf life, making it suitable for ASSB composite electrolytes and cathodes.
Positive
- Air-Stable NASICON Chemistry: No glovebox required for basic handling, unlike sulfide electrolytes, enabling easier laboratory deployment.
- High Ionic Conductivity: ≥10⁻⁴ S/cm at 25°C with 3D Li⁺ pathways, suitable for pellet and composite ASSB configurations.
Trade-offs
- Moisture Sensitivity During Storage: Must be sealed and stored in a cool, dry environment to maintain <2000 ppm moisture; reseal promptly after use.
- Limited Shelf Life: One-year shelf life when sealed, requiring inventory management for research timelines.
Every advanced material, component, equipment, and instrument in our catalog is backed by rigorous testing. We maintain strict internal quality management frameworks and align with CE conformity metrics to deliver transparent, reproducible performance data via our public open-science repository.
To request raw batch performance data, submit formal vendor registration paperwork, or execute a fast-turnaround R&D manufacturing loop, contact us at inquiry@atomfair.com.
Item is dispatched under the Atomfair Shipping & Delivery Framework (Free worldwide shipping on orders over $59 USD excl. heavy equipment). Return is governed by the Atomfair Return & Refund Policy (7-day technical return window).








