Hard Carbon KURANODE Anode Material
Matlabs Technologies offers Hard Carbon Anode Material (KURANODE series) designed for next-generation rechargeable batteries. This non-graphitizable carbon powder is derived from sustainable plant-based sources and delivers reliable electrochemical performance, excellent cycle stability, and superior moisture resistance for modern energy storage applications.
Material Code: MT-MAT-2025
Product Overview
Matlabs Technologies’ Hard Carbon KURANODE is a premium anode material designed for next-generation energy storage research and manufacturing. Produced with precision and derived from renewable plant-based sources, this hard carbon boosts performance characteristics essential for high-power applications.
With a wider interlayer spacing compared to traditional graphite, KURANODE enables improved ion transport and stable cycling, making it suitable for:
- Lithium-ion battery anodes
- Sodium-ion battery systems
- Lithium-ion capacitors
- High-performance energy storage research
The material’s engineered particle size and surface properties help minimize volume expansion during charge/discharge cycles, contributing to longer battery life and consistent behavior under demanding conditions.
Features & Benefits
• Optimized Ion Diffusivity – Wider interlayer spacing improves lithium and sodium ion mobility compared to traditional graphite.
• Superior Cycling Stability – Reduced volume change during cycling enhances durability.
• Moisture Resistance – Type 2 grades offer higher moisture tolerance, compatible with water-based binders like SBR and CMC.
• Sustainable Source – Natural plant-based material reduces environmental impact.
Typical Applications
- Lithium-ion Battery Anodes – Enhances power output and cycle life.
- Sodium-ion Batteries – Supports alternative charge carriers with stable performance.
- Capacitor Anode Material – Suitable for rapid charge/discharge systems.
Packaging & Handling
Supplied as a fine powder in multiple packaging options based on quantity and grade choice. Stored under controlled conditions to preserve material integrity. Compatible with electrode slurry preparation and advanced battery R&D workflows.










































