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Ampcera® Argyrodite Li5.5PS4.5Cl1.5 Sulfide Solid Electrolyte, Fine Powder (D50 ~ 5 um)

SKU: PO0208

  • $ 29995


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Ampcera® Argyrodite Li5.5PS4.5Cl1.5 Sulfide Solid Electrolyte, Fine Powder (D50 ~ 5 um)

If you need more than 1kg, please contact Ampcera Inc. (info@ampcera.com) directly for bulk pricing. 

Manufacturer: Ampcera Inc.
Pack size: 10g, 100g
Nominal Composition: Li5.5PS4.5Cl1.5
Material Type: Argyrodite, Li-argyrodite crystalline phase
Purity: Synthesized from >99.9% precursor materials
Product Form: White powder
Particle Size: Pass 325 mesh, D50 ~ 5 µm
This fine powder can be directly used to make composite solid electrolytes or to mix with cathode materials as solid state catholyte. 
Ionic Conductivity: ~6 mS/cm at 25°C
Electronic Conductivity: ≤10-8 S/cm at 25°C
Wide electrochemical stability window: from 0 to 7 V vs. Lithium
Applications: Solid state electrolyte material for all solid state lithium ion batteries. Cathode electrolyte (catholyte).
Storage and Cautions: Water sensitive. Store and operate in a dry environment.

Shipping and handling: This material is classified as a hazmat and requires special packaging and shipping to comply with  regulatory requirements. Please contact us for specific details with shipping and handling.

* All the solid state electrolyte materials sold by MSE Supplies are under the trademark of Ampcera.

References
  1. "Enhancing moisture and electrochemical stability of the Li5.5PS4.5Cl1.5 electrolyte by oxygen doping." ACS Applied Materials & Interfaces 14.3 (2022): 4179-4185.
  2. "Ionic Conductivity versus Particle Size of Ball‐Milled Sulfide‐Based Solid Electrolytes: Strategy Towards Optimized Composite Cathode Performance in All‐Solid‐State Batteries." Batteries & Supercaps 5.6 (2022): e202200041.
  3. "Se-doped Li6PS5Cl and Li5.5PS4.5Cl1.5 with improved ionic conductivity and interfacial compatibility: a high-throughput DFT study." Journal of Materials Chemistry C 10.48 (2022): 18294-18302.

  4. "Tuning Solid Interfaces via Varying Electrolyte Distributions Enables High‐Performance Solid‐State Batteries." Energy & Environmental Materials (2021).