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Lithium Rich Manganese Based Cathode Material for Lithium Ion Batteries

Battery powder materials

Lithium Rich Manganese Based Cathode Material for Lithium Ion Batteries

Item Number : CL14

Price varies based on specs and customizations


Specific Discharge Capacity
≥200 mAh/g (3.0-4.6V) / >250 mAh/g (2.0-4.8V)
Tap Density
2.00 g/cm³
Median Particle Size (D50)
9.40 µm
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Product Overview

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This high-performance lithium-rich manganese-based cathode material represents a next-generation class of solid-solution active powders engineered specifically for advanced lithium-ion battery chemistry. By leveraging a high-voltage lithium and manganese-rich layered structure, the material delivers significantly higher energy density and specific capacity compared to conventional nickel-cobalt-manganese (NCM) or lithium cobalt oxide (LCO) formulations. The powder features an optimized particle morphology that balances ionic transport, high tap density, and uniform slurry processing.

Engineered primarily for energy storage systems, electric mobility research, high-drain power tools, and consumer electronics development, this cathode powder facilitates seamless transition from benchtop coin-cell screening to pilot-scale pouch-cell assembly. Its manganese-dominant composition substantially mitigates the reliance on scarce, volatile, and expensive raw metals such as cobalt and nickel, presenting an environmentally conscious and cost-effective pathway toward ultra-high-energy-density cells.

Manufactured under rigorous quality control standards, this material exhibits tight particle size distribution, exceptionally low residual transition metal impurities, and consistent batch-to-batch electrochemical repeatability. It empowers researchers and industrial cell manufacturers to push operating voltages up to 4.6V and 4.8V safely, achieving sustained capacity retention, high thermal resilience, and robust cycle lives under rigorous dynamic testing conditions.

Key Features

  • Exceptional Specific Discharge Capacity: Delivers a stable discharge capacity of ≥200 mAh/g within a 3.0V to 4.6V window at 0.1C, and unlocks over 250 mAh/g when cycled in an extended 2.0V to 4.8V operating voltage range due to its advanced solid-solution activation mechanism.
  • Cobalt-Lean and Cost-Efficient Formulation: Formulated predominantly with abundant, cost-effective manganese, dramatically lowering raw material expenditure while improving baseline thermal safety compared to conventional layered oxide cathodes.
  • Optimized Particle Size Distribution: Features a tightly controlled particle spectrum (D10: 4.90 µm, D50: 9.40 µm, D90: 16.8 µm) that minimizes electrode tortuosity, enhances volumetric packing, and ensures homogeneous slurry rheology during coating.
  • High Tap Density: Achieves a superior tap density of 2.00 g/cm³, facilitating dense electrode calendering and high volumetric energy density in finished cylindrical, prismatic, and pouch cell configurations.
  • Low Specific Surface Area: Engineered with a controlled BET specific surface area of 0.70 m²/g, suppressing unwanted electrolyte-electrode side reactions, minimizing gas generation during high-voltage holds, and extending cycle life.
  • High Chemical Purity: Refined with stringent impurity thresholds (Fe ~0.0032%, Cu ~0.0000%, Moisture ~0.0335%), preventing parasitic internal micro-shorting and maintaining high coulombic efficiency throughout prolonged cycling.
  • Broad C-Rate Adaptability: Demonstrates outstanding kinetic charge transfer, supporting continuous discharge rate protocols from 0.1C up to 3.0C with minimal overpotential and robust voltage plateau retention.
  • Flexible Packaging Formats: Supplied in multiple moisture-sealed laboratory and pilot packaging sizes (20g, 100g, 500g, 1000g) inside protective barrier containers to support both micro-scale academic testing and multi-layer pilot line prototyping.

Applications

Application Description Key Benefit
Electric Vehicle (EV) Battery R&D Formulating next-generation traction cells demanding ultra-high gravimetric energy density exceeding conventional ternary limitations. Significantly increases driving range per pack while reducing dependence on expensive cobalt and nickel resources.
Grid Energy Storage Systems (ESS) Developing large-format storage cells where raw material abundance, cyclic stability, and cost per kilowatt-hour are paramount metrics. Delivers a cost-effective, high-capacity cathode matrix with intrinsic thermal resilience and high safety margins.
Industrial Power Tools Engineering high-drain power tool battery packs operating under rapid discharge and fluctuating thermal loads. Maintains structural integrity and sustained power output under aggressive rate cycling up to 3C.
Consumer Electronics & Tablets Designing slim-form-factor pouch cells for smart devices, tablets, and wearable electronics requiring maximum single-charge runtimes. Provides high volumetric density and thin coating compatibility to fit constrained internal hardware spaces.
Laboratory Academic Research Conducting fundamental electrochemical characterization in CR2032/CR2016 coin cells and multi-layer experimental pouch cells. Yields reproducible data across standardized testing protocols with minimal baseline batch variability.
Electronic Toys & Smart Hardware Integrating reliable power sources into consumer robotics, RC equipment, and connected smart consumer hardware. Combines high volumetric energy density with cost-competitive material economics for mass-market deployment.

Technical Specifications

Parameter Category Specification Metric Value (Item: CL14)
Model Identification Product Code CL14
Physical Properties Particle Size D10 4.90 µm
Particle Size D50 9.40 µm
Particle Size D90 16.8 µm
BET Specific Surface Area 0.70 m²/g
Tap Density 2.00 g/cm³
pH Value 10.86
Chemical Composition & Impurities Iron (Fe) Content ~0.0032%
Copper (Cu) Content ~0.0000%
Magnesium (Mg) Content ~0.0129%
Gallium (Ga) Content ~0.0099%
Moisture (H2O) Content ~0.0335%
Electrochemical Characteristics Nominal Operating Voltage 3.0 V – 4.6 V (Extended: 2.0 V – 4.8 V)
Specific Discharge Capacity (0.1C, 3.0–4.6V) ≥200 mAh/g (Coin Cell, 25°C)
High-Voltage Specific Capacity (2.0–4.8V) >250 mAh/g
Standard Test Conditions Coin Cell Capacity Benchmark 25°C, 0.1C constant current discharge, 3.0 V to 4.6 V
C-Rate Evaluation Protocol Charge: 25°C, 0.5C CC to 4.8V, CV to <0.02C; Discharge: 0.1C, 0.2C, 0.5C, 1.0C, 2.0C, 3.0C CC to 3.0V
Cycle Life Evaluation Protocol Charge: 25°C, 0.5C CC to 4.8V, CV to <0.02C; Discharge: 1.0C CC to 3.0V
Packaging & Form Factor Available Packaging Options 20 g / 100 g / 500 g / 1000 g sealed protective bottles

Why Choose This Product

  • Proven Solid-Solution Chemistry: Engineered using precise compositional balancing that activates excess lithium capacity at elevated voltages, consistently achieving over 250 mAh/g specific capacity without structural phase collapse.
  • Commercial-Grade Manufacturing Precision: Produced through automated precipitation and calcination lines, ensuring tightly controlled morphology, uniform D50 distribution, and trace impurity levels that satisfy stringent industrial standards.
  • Exceptional Processability: Exhibits low moisture absorption, optimal pH stability, and low specific surface area, allowing seamless integration into standard aqueous and NMP-based solvent slurry processing pipelines without gelation.
  • Economical & Strategic Supply Security: By utilizing manganese as the primary transition metal backbone, this powder significantly lowers production expenses and insulates supply chains from geopolitical raw material volatility.
  • Comprehensive Technical Support: Backed by deep materials characterization data, standardized cycling protocols, and expert technical guidance across cell assembly, calendering, and high-voltage testing.

Contact our technical sales team today to request a quote, order sample batches, or discuss customized packaging requirements for your battery research and production lines.

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Lithium Rich Manganese Based Cathode Material for Lithium Ion Batteries

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