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Home Cell Lab Prussian Blue Analogue Powder [Na₂Fe₂(CN)₆, Sodium-Ion Cathode Material, ≥120 mAh/g, 1 g]
Cell Lab Prussian Blue Analogue powder (Na₂Fe₂(CN)₆, ≥120 mAh/g, 1 g) – high-purity sodium-ion cathode material featuring open-framework structure, stable cycling, and strong Na⁺ mobility.
Cell Lab Prussian Blue Analogue powder (Na₂Fe₂(CN)₆, ≥120 mAh/g, 1 g) – high-purity sodium-ion cathode material featuring open-framework structure, stable cycling, and strong Na⁺ mobility.

Cell Lab Prussian Blue Analogue Powder [Na₂Fe₂(CN)₆, Sodium-Ion Cathode Material, ≥120 mAh/g, 1 g]

Cell Lab Prussian Blue Analogue Powder [Na₂Fe₂(CN)₆, Sodium-Ion Cathode Material, ≥120 mAh/g, 1 g] High-capacity Prussian Blue Analogue (NaHCF) cathode powder for next-generation sodium-ion battery research The Cell Lab Prussian Blue Analogue (PBA) Powder, based on Na₂Fe₂(CN)₆, is a high-performance...
Vendor: Cell Lab
SKU: CL0176
Product type: Battery Consumables
£339.00
£339.00
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Description
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Cell Lab Prussian Blue Analogue Powder [Na₂Fe₂(CN)₆, Sodium-Ion Cathode Material, ≥120 mAh/g, 1 g]

High-capacity Prussian Blue Analogue (NaHCF) cathode powder for next-generation sodium-ion battery research

The Cell Lab Prussian Blue Analogue (PBA) Powder, based on Na₂Fe₂(CN)₆, is a high-performance cathode material developed for sodium-ion battery (SIB) innovation and solid-state energy storage research. Featuring an open-framework structure with high Na⁺ mobility, it delivers superior electrochemical stability, efficient ion diffusion, and reproducible specific capacity exceeding 120 mAh/g at 0.1C within a 2.0–4.0 V range.

Produced with controlled alkalinity (pH = 8.56) and uniform particle size distribution (D50 ≈ 19.9 μm), this research-grade PBA powder ensures excellent packing density, kinetic performance, and electrolyte compatibility—making it ideal for academic studies, prototyping, and post-lithium cathode development.


Key Features

Sodium-Ion Optimised Design
Prussian Blue Analogue (NaHCF) structure supports rapid Na⁺ insertion/extraction with minimal lattice distortion.

High Specific Capacity
Delivers ≥120 mAh/g at 0.1C (2.0–4.0 V), ensuring strong energy density and stable cycling.

Fine Particle Size Distribution
D50 ≈ 19.9 μm provides enhanced electrode uniformity and fast ionic diffusion for improved electrochemical kinetics.

Controlled Alkalinity
pH = 8.56 ensures electrolyte stability and compatibility with standard sodium-ion battery systems.

High Surface Area
BET surface area of 23.8 m²/g increases electrochemical reactivity and material utilisation.

Technical Specifications


Property Value
Molecular Formula Na₂Fe₂(CN)₆ (NaHCF)
Appearance Blue powder
Particle Size D10 4.2 μm
Particle Size D50 19.9 μm
Particle Size D90 47.6 μm
BET Specific Surface Area 23.8 m²/g
pH 8.56
First Discharge Specific Capacity ≥120 mAh/g (Na, 0.1C, 2–4V)

Applications & Industries

  • Sodium-ion and solid-state battery cathode research

  • Prussian Blue Analogue synthesis and optimisation studies

  • Energy storage materials development and benchmarking

  • Academic and industrial R&D on next-generation batteries

  • Post-lithium sustainable energy technology


FAQ

Q1: What makes Prussian Blue Analogues suitable for sodium-ion batteries?
Their open-framework structure enables rapid Na⁺ transport and strong structural retention during charge–discharge cycles.

Q2: How does this material compare to NaFePO₄ or NaMnPO₄?
While NaFePO₄ offers higher voltage, Prussian Blue Analogues provide faster ionic kinetics and lower cost of synthesis.

Q3: Can this material be used in aqueous or non-aqueous systems?
Yes. It is compatible with both, depending on binder and electrolyte formulations.

Q4: Is carbon coating required for this material?
Not necessary; its intrinsic electronic properties and surface area typically provide adequate performance for laboratory research.

Q5: What purity level does this PBA powder offer?
It is manufactured to research-grade standards with controlled impurity levels to ensure consistent test results.

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Returns Policy

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.

Shipping

We can ship to virtually any address in the world. Note that there are restrictions on some products, and some products cannot be shipped to international destinations.

When you place an order, we will estimate shipping and delivery dates for you based on the availability of your items and the shipping options you choose. Depending on the shipping provider you choose, shipping date estimates may appear on the shipping quotes page.

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.

Cell Lab Ltd

Cell Lab Ltd, 85 Great Portland Street First Floor, London, W1W 7L, United Kingdom

Email: sales@celllab.co.uk

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At Cell Lab, we empower scientific discovery by delivering high-precision instruments and ultra-pure materials to research institutions, battery innovators, and advanced material scientists.

Our curated portfolio supports critical research across battery R&D, semiconductor development, and materials science—with trusted tools including glove boxes, planetary ball mills, vacuum-compatible pressing systems, sputtering targets, ceramic substrates, and more.

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