Ni0.4Fe0.2Mn0.4(OH)2 Precursor Powder for O3-Type Layered Oxide NaNi0.4Fe0.2Mn0.4O2 Cathode Synthesis, 100 g/bottle, CSIBPCNFM424OH
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Ni0.4Fe0.2Mn0.4(OH)2 precursor powder (often abbreviated as NFM 424 hydroxide) is a specialized material designed as a structural template for synthesizing sodium-ion battery (SIB) layered oxide cathodes, specifically targeting formula variants like NaNi0.4Fe0.2Mn0.4O2. By adjusting the transition metal ratio from the symmetric 1:1:1 (Ni1/3Fe1/3Mn1/3) mix to a slightly higher nickel and manganese content relative to iron, this composition seeks to optimize the balance between energy density, phase stability, and air stability during cycling.
The conversion of the precursor to the final active cathode active material occurs via high-temperature calcination with a sodium salt (typically sodium carbonate, Na2CO3, or sodium hydroxide, NaOH:
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O3 vs. P2 Control: Sintering this exact precursor ratio around 800°C typically yields an O3-type phase, which maximizes initial specific capacity (~ 135 mAh/g} between 2.0–4.0V vs. Na/Na+). Atmospheric Sensitivity of Precursor: Unlike stable NMC precursors, NFM424 hydroxide powder is highly prone to moisture pickup and localized surface oxidation if left exposed to ambient air. It should be transferred and stored under vacuum or an inert gas blanket prior to calcination to ensure reproducible electrochemical properties.
| Part Number |
CSIBPCNFM424OH (C-SIB-PC-NFM424OH) |
| Purity |
>99.9% (Ni:Fe:Mn=39.99: 19.68: 40.14 mol%) |
| Impurity |
Na<99 ppm, Mg<25 ppm, Si<7 ppm Ca<6 ppm, Al<3 ppm, S<142 ppm |
| Particle Size Distribution |
D10: 4.2 um; D50 =5.3 um; D90 = 6.7 um; D95: 7.2 um |
| Water Level |
<380 ppm |
| Tap Density | 1.99 g/cm3 |
| Specific Area (BET) | 10.1 m2/g |
Notes: (1) Please store the Ni0.4Fe0.2Mn0.6(OH)2 precursor powder in a dry area (glovebox is preferred); (2) The battery precursor powder is highly recommended to be dried at 80-100°C in a vacuum oven for 6-12 h before use.
References:
- X. Li, et al. Preparation and Property Optimization of High Capacity O3-type NaNi0.4Fe0.2Mn0.4O2, J. Electrochem. Soc., 2024, 171, 080526
- X. Li, et al. Prilling and Coating Strategy to Synthesize High-Performance Spherical NaNi0.4Fe0.2Mn0.4O2 Cathode Materials for Sodium Ion Batteries, Langmuir 2024, 40, 35, 18610–18618