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BN-P2C P/O Composite Sodium Ion Battery Cathode Material Sodium Nickel Iron Manganese Oxide

    Buy cheap BN-P2C P/O Composite Sodium Ion Battery Cathode Material Sodium Nickel Iron Manganese Oxide from wholesalers
     
    Buy cheap BN-P2C P/O Composite Sodium Ion Battery Cathode Material Sodium Nickel Iron Manganese Oxide from wholesalers
    • Buy cheap BN-P2C P/O Composite Sodium Ion Battery Cathode Material Sodium Nickel Iron Manganese Oxide from wholesalers

    BN-P2C P/O Composite Sodium Ion Battery Cathode Material Sodium Nickel Iron Manganese Oxide

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    Brand Name : XWELL
    Model Number : BN-P2C
    Certification : CE
    Payment Terms : L/C,D/A,D/P,T/T,Western Union,MoneyGram
    Supply Ability : 1 t/month
    Delivery Time : 5-7 days
    Price : 1-1000USD/Negotiable
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    BN-P2C P/O Composite Sodium Ion Battery Cathode Material Sodium Nickel Iron Manganese Oxide

    Sodium Nickel Iron Manganese Oxide BN-P2C P/O Composite Sodium Ion Battery Cathode Material


    Overview​

    ​BN-P2C​​ is a ​​P/O hybrid-phase layered oxide cathode material​​ with the general formula NaNiₓFeᵧMn₁₋ₓ₋ᵧO₂, where P2 (trigonal prismatic Na⁺ sites) and O3 (octahedral Na⁺ sites) phases coexist. This dual-phase structure synergizes the advantages of both phases: ​​P2​​ offers fast Na⁺ diffusion and structural stability, while ​​O3​​ provides higher Na⁺ content and capacity.

    ​Key Features​

    1. ​Structure & Composition​​:

      • ​P2/O3 intergrowth​​ mitigates irreversible phase transitions during cycling, enhancing structural integrity.
      • Transition metals (​​Ni​​, ​​Fe​​, ​​Mn​​) balance cost and performance: Ni boosts capacity, Mn stabilizes the framework, and Fe reduces costs.
    2. ​Performance Advantages​​:

      • ​High reversible capacity​​: ~130–140 mAh/g at 0.1C, with stable output at 1C (~120 mAh/g).
      • ​Improved cyclability​​: Hybrid-phase interfaces suppress layer sliding and volume changes, achieving >90% capacity retention after 50 cycles.
      • ​Enhanced kinetics​​: P2-phase channels accelerate Na⁺ diffusion, enabling better rate capability.
    3. ​Challenges & Optimization​​:

      • ​Air sensitivity​​: Surface residual alkali (e.g., NaOH) requires protective coatings (e.g., Al₂O₃, NaTi₂(PO₄)₃).
      • ​High-voltage instability​​: Doping (e.g., Ti, Mg) stabilizes the lattice above 4.0 V vs. Na⁺/Na.

    ​Applications​

    BN-P2C is tailored for ​​large-scale energy storage​​ (grid storage, EVs) due to its low cost, compatibility with existing manufacturing, and balanced energy/power density. Ongoing research focuses on ​​entropy engineering​​ and ​​morphology control​​ to further improve performance.

    Specifications​

    ItemUnitSpecificationValueReference StandardTest Equipment Model
    Nawt%17.1±0.316.9GB/T 27598-2011Agilent 5800
    Niwt%12.6±0.312.7--
    Fewt%12.0±0.312.1--
    Mnwt%23.6±0.323.5--
    D10μm5.5±0.55.6GB/T 19077-2016Mastersizer 3000 (AERO S, dry method)
    D50μm9.5±0.59.9GB/T 19077-2016-
    D90μm17.5±0.517.9GB/T 5162-202X-
    Tap densityg/cm³≥1.21.45-Micromeritics TriStar 3030
    SSAm²/g--GB/T 19587-2004Micromeritics GeoPyc 1365
    2TPDg/cm³--GB/T 24533-2019MYCRO Carver 4350
    0.1C capacitymAh/g130±2130.2Half-cell evaluation method-
    First-cycle efficiency%≥9596.3Electrolyte: 1M NaPF6 in diglyme-
    1C reversible capacitymAh/g120±2118.4Voltage window: 2.0-4.1V-
    50th retention%≥9597.9--

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