LLZO Garnet Oxide Electrolyte Powder 40–60 nm

$237.00

Institutional Procurement & Supply Compliance: As a verified US supplier, Atomfair accepts formal institutional Purchase Orders (POs), contract billing schedules, and custom procurement loops for university and national laboratories, and corporate R&D departments globally.

LLZO (Li7La3Zr2O12) garnet oxide electrolyte powder, 40–60 nm, 99.9% pure, ~2 mS/cm at 27 °C, 100 g. For solid-state lithium battery research. Order now.

LLZO (Li7La3Zr2O12) Garnet-Type Oxide Solid-State Electrolyte Powder, 40-60 nm

Oxide Solid-State Electrolytes

Product Overview

Nanoscale LLZO garnet oxide solid electrolyte powder for lithium battery research.

Product Details

LLZO is a garnet-type lithium-ion conducting oxide solid electrolyte. This nanoscale powder is intended for oxide electrolyte, composite catholyte, and solid-state lithium battery research.

Key Product Data

Parameter Detail
Chemical formula Li7La3Zr2O12
Particle size 40-60 nm
Specification 100 g
Purity 99.9%
Ionic conductivity ~2 mS/cm at 27 °C
Theoretical density 0.68 g/cm³

Key Features

  • Garnet-type oxide
  • nanoscale particle size
  • lithium-ion conducting ceramic
  • suitable for composite and ceramic electrolyte development.

Application Areas

This material serves as a solid electrolyte for all-solid-state lithium batteries and lithium-metal batteries. Especially suitable for lithium-metal anode systems, oxide-cathode-based ASSLBs, garnet-polymer composite electrolyte films, ceramic separator pellet sintering, and academic studies of garnet ion transport. Furthermore, the sub-micron particle size supports composite electrolyte film fabrication and intimate cathode interface contact in composite electrode formulations.

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Packaging & Storage

Use a sealed, dry container and follow the supplier SDS/COA for storage and handling.

Products may come from different stock or batches; actual delivered goods shall govern.
TAILORED SOLUTIONS FOR RESEARCH
Contact our engineering team for technical support or official institutional quotations.
EMAIL: inquiry@atomfair.com
Manufacturer: Atomfair LLC
Brand: ATOMFAIR®

This LLZO powder must be stored in a sealed, dry container to prevent moisture uptake and degradation of ionic conductivity. The powder should be handled in a dry environment, such as a glovebox, to maintain its electrochemical performance.

  • Storage Requirement: Store the powder in a sealed, dry container to prevent moisture absorption and performance degradation.

What is the ionic conductivity of this nanoscale LLZO powder and how does the particle size influence its performance in composite electrolytes?

The product has an ionic conductivity of ~2 mS/cm at 27 °C. The nanoscale particle size (40–60 nm) is specifically designed to support composite electrolyte film fabrication by enabling intimate contact with cathode materials and reducing interfacial resistance in solid-state lithium batteries.

Is this LLZO powder compatible with lithium-metal anodes and oxide cathodes for all-solid-state batteries?

Yes, this garnet-type oxide solid electrolyte is especially suitable for lithium-metal anode systems and oxide-cathode-based all-solid-state lithium batteries. It is intended for use as a solid electrolyte, composite catholyte, and in garnet-polymer composite electrolyte films.

What storage conditions are recommended for this LLZO garnet powder to maintain its performance?

The product must be stored in a sealed, dry container. Storage and handling should follow the supplier's SDS and COA to prevent moisture uptake and degradation of ionic conductivity.

This nanoscale LLZO garnet powder offers high ionic conductivity (~2 mS/cm) with a particle size of 40-60 nm, enabling effective composite electrolyte fabrication. However, the low theoretical density (0.68 g/cm³) and moisture sensitivity require careful handling and sintering optimization for dense ceramic electrolyte applications.

Positive

  • Nanoscale particle size advantage: Particle size of 40-60 nm provides high surface area, enabling intimate contact in composite catholyte and electrolyte films, which improves ionic conduction pathways in solid-state battery assemblies.
  • High ionic conductivity at room temperature: Ionic conductivity of approximately 2 mS/cm at 27°C supports efficient lithium-ion transport, making the material suitable for all-solid-state lithium batteries and lithium-metal anode systems.

Trade-offs

  • Low packing density for sintering: Theoretical density of 0.68 g/cm³ is low, indicating loose packing that may require careful optimization of sintering parameters (pressure, temperature, time) to achieve dense, crack-free ceramic electrolytes.
  • Moisture and air sensitivity: LLZO garnet powders are hygroscopic and can degrade upon exposure to ambient moisture; storage in sealed, dry containers and handling under inert atmosphere are necessary to maintain phase purity and ionic conductivity.

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).

Weight

40-60 nm, 100g