
LAGP (Li₁.₅Al₀.₅Ge₁.₅(PO₄)₃) NASICON-Type Oxide Solid-State Electrolyte Powder
SKU: XN-LAGP
LAGP (Li₁.₅Al₀.₅Ge₁.₅(PO₄)₃) NASICON-Type Oxide Solid-State Electrolyte Powder is a white NASICON-type oxide electrolyte with the formula Li₁.₅Al₀.₅Ge₁.₅(PO₄)₃, 99.9% purity, 3 μm D50, 3.2 g/cm³ density, and ionic conductivity of 3–6 × 10⁻⁴ S/cm.
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Name: LAGP (Li₁.₅Al₀.₅Ge₁.₅(PO₄)₃) NASICON-Type Oxide Solid-State Electrolyte Powder
Material Type: NASICON-Type Oxide Solid-State Electrolyte
Product Code: XN-LAGP
Brand: Xnergy
Product Introduction:
XN-LAGP is a lithium aluminum germanium phosphate oxide electrolyte powder for solid-state battery and solid-electrolyte research. Its NASICON-type composition is Li₁.₅Al₀.₅Ge₁.₅(PO₄)₃. The supplied material is a white powder with a D50 particle size of 3 μm and 99.9% purity.
Core Features:
- NASICON-type LAGP oxide electrolyte
- Li₁.₅Al₀.₅Ge₁.₅(PO₄)₃ composition
- 99.9% stated purity
- 3 μm D50 particle size
- 3–6 × 10⁻⁴ S/cm stated ionic conductivity
- XRD and SEM characterization supplied
Technical Specifications:
| Parameter | Specification |
|---|---|
| Product Type | NASICON-type oxide solid-state electrolyte powder |
| Product Code | XN-LAGP |
| Brand | Xnergy |
| Material | LAGP |
| Chemical Formula | Li₁.₅Al₀.₅Ge₁.₅(PO₄)₃ |
| Appearance | White powder |
| D50 Particle Size | 3 μm |
| Purity | 99.9% |
| Density | 3.2 g/cm³ |
| Ionic Conductivity | 3–6 × 10⁻⁴ S/cm |
| Crystal Structure | NASICON type |
X-Ray Diffraction:
The supplied XRD trace is presented together with the LAGP standard pattern for phase comparison.

SEM Particle Morphology:
The supplied SEM image shows the powder particle morphology at ×10,000 magnification with a 1 μm scale bar.

Applications:
- Oxide solid-state electrolyte research
- Solid-state lithium battery research
- Electrolyte pellet and ceramic-processing studies
- Electrochemical and materials-characterization research
- Composite solid-electrolyte development
Note: Reported values are based on the supplied product information. Actual electrochemical performance depends on powder processing, pellet density, sintering conditions, electrode interfaces, cell design, temperature, and test method. Explore the Oxide category and Solid-State Electrolytes.




