NFPP Sodium Iron Phosphate Pyrophosphate Single-Sided Cathode, 13 mg/cm² per side

$89.00

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single-sided NFPP sodium iron phosphate pyrophosphate cathode sheet for sodium-ion battery research. Key specifications: 13 mg/cm2 areal loading, 94.50% active material, 1.51 g/cm3 compaction density, 152 x 110 mm, 5-Pack. Suitable for sodium-ion cathode comparison, hard-carbon pairing, electrolyte studies, and sodium-ion cell assembly.

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1 – 4 $89.00
5+ $79.00
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NFPP Sodium Iron Phosphate Pyrophosphate Single-Sided Cathode, 13 mg/cm² per side
Single-Sided Cathode Sheet
Product Overview

NFPP Sodium Iron Phosphate Pyrophosphate Single-Sided Cathode, 13 mg/cm² per side is a pre-coated Sodium Iron Phosphate Pyrophosphate (NFPP) electrode with an areal loading of 13 mg/cm² per side, a 94.50% active material ratio, wet-process fabrication, and a compaction density of 1.51 g/cm³. The coated area is 152 x 110 mm, with a Carbon-coated aluminum foil current collector, and and a current collector areal density of 3.63 mg/cm². This defined single-sided format is intended for controlled battery electrode research and comparison work. The active material system, coating side, coating loading, coating area, current collector, and compaction density can be customized for a specified research configuration.

Technical Specifications
Parameter Specification / Available Values
Product Type Single-Sided Cathode Sheet
Active Material System Sodium Iron Phosphate Pyrophosphate (NFPP)
Coating Side Single-Sided
Areal Loading 13 mg/cm² per side
Active Material Ratio 94.50%
Coating Process Wet Process
Compaction Density 1.51 g/cm3
Coating Area 152 x 110 mm
Current Collector Carbon-coated aluminum foil
Current Collector Areal Density 3.63 mg/cm²
Pack Size 5-Pack
Customization: The electrode format and selected specifications may be customized according to the target research configuration. Please confirm the required specification, coating format, quantity, and packaging before quotation.
Notice: Technical values may have reasonable measurement, batch, or documentation deviations. Please confirm the final specification and configuration before quotation and use.
Related Categories
Research Direction Related Category Use
Compare active battery materials Lithium-Ion Cathode Materials Powder materials and active-material selection.
Build pouch-cell research samples Dry Cells Unfilled dry pouch-cell formats for cell assembly workflows.
Compare the opposite electrode format Lithium-Ion Anode Electrode Sheets Anode comparison and anode-cathode matching.
LABORATORY PROCUREMENT SUPPORT
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Supplier: Atomfair
Brand: ATOMFAIR®

The NFPP-S03 electrode sheet requires a mandatory vacuum baking step before use to prevent phase contamination and structural degradation. Ambient exposure should be minimized to maintain electrochemical performance integrity.

  • Baking Protocol: Bake the electrode sheets under vacuum at 100°C for 12 hours before use.

What is the capacity of the Atomfair NFPP-S03 electrode sheet and how does the active material ratio influence its performance?

The NFPP-S03 electrode sheet delivers a capacity of 95 mAh/g, supported by a high active material ratio of 94.50%. This optimized ratio ensures a robust, uniform NFPP distribution across the coated area, critical for reliable baseline testing and electrolyte validation in sodium-ion battery R&D.

What are the substrate specifications of the NFPP-S03 electrode sheet and how do they affect integration in sodium-ion half-cell testing?

The electrode sheet uses a carbon-coated aluminum foil substrate with a current collector density of 3.63 mg/cm² and a total substrate thickness of 12 + 0.5 + 0.5 μm. The carbon coating maximizes electrical contact and optimizes boundary interfacial dynamics, ensuring consistent electrochemical performance across half-cell foils testing matrices.

What is the recommended pre-treatment protocol for the NFPP-S03 electrode sheet before electrochemical testing?

The recommended baking protocol is to maintain the electrode sheet under vacuum at 100°C for 12 hours. This step prevents ambient phase contamination or structural degradation before thermal validation, ensuring data fidelity in sodium-ion battery R&D experiments.

This single-sided NFPP electrode sheet delivers a 94.5% active material ratio via a 13 mg/cm² wet-coated layer on carbon-coated aluminum foil, ensuring uniform electrochemical testing for sodium-ion battery R&D. A mandatory 12-hour vacuum bake at 100°C is required before use to prevent phase contamination.

Positive

  • High active material ratio: 94.50% active material content ensures a homogeneous NFPP distribution across the electrode, reducing variability in half-cell testing.
  • Carbon-coated foil substrate: The carbon-coated aluminum foil current collector maximizes electrical contact and interfacial boundary dynamics, enhancing evaluation accuracy.

Trade-offs

  • Mandatory vacuum bake before use: The electrode must be baked under vacuum at 100°C for 12 hours to prevent ambient phase contamination or structural degradation, adding preprocessing time to experiments.

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).