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The Cell Lab Sodium Manganese Phosphate (NaMnPO₄) powder is a high-purity (≥99.9%) cathode material designed for next-generation sodium-ion batteries (SIBs). Featuring a 3 wt% conductive carbon coating, it provides improved electrical conductivity, enhanced electrolyte wettability, and stable Na⁺ diffusion.
NaMnPO₄ utilises the Mn³⁺/Mn²⁺ redox couple, enabling high reversibility and structural stability within an orthorhombic crystal lattice. With fine particle size (≤3 µm) and uniform carbon dispersion, it is ideal for laboratory-scale SIB development, electrochemical performance testing, and energy storage material innovation.
Carbon-Coated for High Conductivity
A uniform 3 wt% carbon layer enhances electron transfer, electrolyte wetting, and cathode–electrolyte interfacial contact.
High Purity Composition (≥ 99.9%)
Research-grade material ensuring consistent quality and reproducible electrochemical results.
Optimised Fine Particle Size
Submicron-level powder (≤ 3 µm) offers superior surface area and active ion intercalation kinetics.
Stable Orthorhombic Structure
Provides strong lattice integrity and reliable Na⁺ transport channels during charge–discharge cycling.
Sustainable Energy Storage Material
Cost-effective and eco-friendly alternative to lithium-based cathodes for next-generation sodium-ion systems.
| Property | Value |
|---|---|
| Chemical Formula | NaMnPO₄ (97 wt%) + Carbon (3 wt%) |
| Purity | ≥ 99.9% |
| Particle Size | ≤ 3 µm |
| Appearance | Dark grey powder |
| Structure | Orthorhombic |
| Package Size | 50 g per bottle |
| Application | Sodium-ion battery cathode |
| Fe | Cu | Na | Ca | Co | Mg | Ti | Al | Zr |
| 20 | 10 | 15 | 7 | 20 | 16 | 15 | 30 | 20 |
Sodium-ion and solid-state cathode R&D
Material science and energy storage innovation
Electrochemical performance benchmarking
Battery prototyping and academic research
Sustainable alternatives to Li-ion cathodes
Q1: Why is NaMnPO₄ coated with carbon?
The 3 wt% carbon layer significantly improves electronic conductivity and interfacial contact, essential for efficient charge transfer.
Q2: What makes NaMnPO₄ suitable for sodium-ion batteries?
Its Mn³⁺/Mn²⁺ redox activity and stable phosphate framework enable reversible Na⁺ intercalation with long cycle life.
Q3: Is this material compatible with aqueous or non-aqueous electrolytes?
It is compatible with both, depending on binder selection and electrode formulation.
Q4: Can it be used for full-cell assembly?
Yes. It serves effectively as the cathode material paired with hard carbon or NaTi₂(PO₄)₃ anodes in SIB research.
Q5: Is custom packaging available for bulk purchase?
Yes. Quantities from 10 g up to 1 kg are available upon request for laboratory and pilot-scale needs.
You may return most new, unopened items within 30 days of delivery for a full refund. We'll also pay the return shipping costs if the return is a result of our error (you received an incorrect or defective item, etc.).
You should expect to receive your refund within four weeks of giving your package to the return shipper, however, in many cases you will receive a refund more quickly. This time period includes the transit time for us to receive your return from the shipper (5 to 10 business days), the time it takes us to process your return once we receive it (3 to 5 business days), and the time it takes your bank to process our refund request (5 to 10 business days).
If you need to return an item, simply login to your account, view the order using the "Complete Orders" link under the My Account menu and click the Return Item(s) button. We'll notify you via e-mail of your refund once we've received and processed the returned item.
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Please also note that the shipping rates for many items we sell are weight-based. The weight of any such item can be found on its detail page. To reflect the policies of the shipping companies we use, all weights will be rounded up to the next full pound.
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