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Dry Pouch Cells with Layered Oxide NFM (NaNi1/3Fe1/3Mn1/3O2) + Hard Carbon for Sodium-Ion Battery, 0.5-7 Ah/pcs/pack, CSIBDPCNNFMO

Dry Pouch Cells with Layered Oxide NFM (NaNi1/3Fe1/3Mn1/3O2) + Hard Carbon for Sodium-Ion Battery, 0.5-7 Ah/pcs/pack, CSIBDPCNNFMO

$129.00 USD
In Stock SKU: CSIBDPCNNFMO05
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Assembling Dry Pouch Cells using NaNi1/3Fe1/3Mn1/3O2 (NFM) as the cathode and Hard Carbon (HC) as the anode is the industry-standard approach for developing high-energy-density Sodium-Ion Batteries (SIBs). This layered oxide chemistry is often favored over Prussian Blue because of its higher volumetric energy density and its processability, which closely mimics traditional Lithium-ion (NMC) manufacturing.

The "Dry" stage is a mandatory quality control gate in NFM production for two reasons: (1) De-gas and De-hydrate: NFM layered oxides can trap moisture within the layers. By vacuum-sealing the cell while "dry" and then placing it in a Vacuum Oven (100-120°C), you ensure that the crystal lattice is free of water before it meets the NaPF6 electrolyte. (2) Storage Stability: Raw NFM electrodes degrade quickly if left exposed. Once inside a sealed dry pouch, the NFM is protected from atmospheric CO2, preventing the formation of resistive carbonate "crusts" on the particle surfaces.

Part Number
  • CSIBDPCNNFMO05
  • CSIBDPCNNFMO10
  • CSIBDPCNNFMO70
Cell General Parameters
  • Cell Capacity: 0.5 Ah
  • Cell Size: L86*W65*T2.0 mm
  • Stacking Mode
  • Material: Layered Oxide NaNi1/3Fe1/3Mn1/3O2 + Hard Carbon (HC)
  • Cell Capacity: 1.0 Ah
  • Cell Size: L80*W58*T3.0 mm
  • Stacking Mode
  • Material: Layered Oxide NaNi1/3Fe1/3Mn1/3O2+ Hard Carbon (HC)
  • Cell Capacity: 7.0 Ah
  • Cell Size: L190*W82*T5.0 mm
  • Stacking Mode
  • Material: Layered Oxide NaNi1/3Fe1/3Mn1/3O2+ Hard Carbon (HC)
Layered Oxide NaNi1/3Fe1/3Mn1/3O2 Cathode
  • Sheet Size: 60*80mm, 6 layers
  • Active Portion: 95.3%
  • Double-Side Area Density: 30.0 mg/cm2
  • Compaction Density: 3.0 g/cm3
  • Specific Capacity: 142 mAh/g 
  • Sheet Size: 75*54mm, 8 layers
  • Active Portion: 95.0%
  • Double-Side Area Density: 35.4 mg/cm2
  • Compaction Density: 2.20 g/cm3
  • Specific Capacity: 100 mAh/g 
  • Active Portion: 95.5%
  • Double-Side Area Density: 28.6 mg/cm2
  • Compaction Density: 2.80 g/cm3
  • Specific Capacity: 127 mAh/g 
Hard Carbon Anode
  • Sheet Size: 63*84mm, 7 layers
  • Active Portion: 94.5%
  • Double-Side Area Density: 15.0 mg/cm2
  • Compaction Density: 1.0 g/cm3
  • Specific Capacity: 300 mAh/g 
  • Sheet Size: 77*56mm, 9 layers
  • Active Portion: 93.7%
  • Double-Side Area Density: 15.2 mg/cm2
  • Compaction Density: 0.90 g/cm3
  • Specific Capacity: 280 mAh/g 
  • Active Portion: 92.0%
  • Double-Side Area Density: 12.68 mg/cm2
  • Compaction Density: 0.90 g/cm3
  • Specific Capacity: 310 mAh/g 
Separator
  • 2um Al2O3 + 9 um PP + 2 um Al2O3
  • 2um Al2O3 + 9 um PP + 2 um Al2O3
  • 2um Al2O3 + 9 um PP + 2 um Al2O3
Recommended Electrolyte Amount
Test Voltage Range
  • 1.50-3.95 V
  • 1.50-3.95 V
  • 1.50-4.00 V
Punched Airbag Design
  • No
  • No
  • Yes

Testing Processes:

(1) Electrolyte Filling with recommended amount in glovebox.
(2) First Time Aging: 45°C, aging time ≥ 15h in an oven.
(3) Formation conditions: 45°C, 5 min rest; 0.02C constant current charging (10% theoretical capacity or 5 h); 0.1C constant current charging (30% theoretical capacity, 3 h); 5 min rest; total capacity is 40% or 8 h;
(4) Second Time Aging: 45°C, aging time ≥ 24h in a oven
(5) Battery Analyzer for charging and discharging.

References:

  1. Y. Jin, et al., Low-solvation electrolytes for high-voltage sodium-ion batteries, Nat. Energy, 2022, 7, 718–725
  2. B. Liu, et al., Super-wetting interface engineering of space-confined micron-sized alloying anodes for high-performance sodium-based dual-ion batteries, Matter, 2025, 8, 102294

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