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Ti2AlN MAXene Powder

Ti2AlN MAXene Powder

Product Details:

  • Usage & Applications Energy storage, supercapacitors, electromagnetic shielding, sensors, catalysis, batteries
  • Purity(%) >99%
  • Melting Point ~1600C
  • Grade Industrial Grade
  • Metal Type Transition Metal Nitride
  • Particle Size <50 nm
  • Product Type MAXene Powder
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Ti2AlN MAXene Powder Product Specifications

  • >99%
  • Gray
  • Customizable
  • Energy storage, supercapacitors, electromagnetic shielding, sensors, catalysis, batteries
  • Transition Metal Nitride
  • ~1600C
  • Industrial Grade
  • 4.25 Gram per cubic centimeter(g/cm3)
  • Titanium Aluminium Nitride
  • 1 g, 10 g, 100 g (available options)
  • Ti2AlN
  • Powder
  • <50 nm
  • Not Applicable (powder form)
  • MAXene Powder

Ti2AlN MAXene Powder Trade Information

  • Western Union, Paypal, Telegraphic Transfer (T/T)
  • Western Europe, Eastern Europe, Middle East, South America, Asia, Central America, North America, Australia, Africa
  • All India

Product Description



Explore the transcendent possibilities of Ti2AlN MAXene Powder, a virtuoso among advanced nanomaterials. With its wondrous high metallic electrical conductivity, excellent thermal stability, and low moisture sensitivity, this fine gray industrial-grade powder epitomizes cutting-edge material science. Available in customizable sizes and weights (1g, 10g, 100g), it delivers superior surface area ideal for energy storage, sensors, catalysis, and more. Sealed packaging and robust shelf life ensure reliability. Shop Now and discover the special potential of this tailored titanium aluminium nitride solution, proudly produced in India.

Versatile Applications & Targeted Usage

Ti2AlN MAXene Powder is designed for both general and specialized applications, such as energy storage devices, supercapacitors, electromagnetic shielding, advanced sensors, catalysis, and batteries. Its high surface area and remarkable stability make it ideal for scientific research, industrial processes, and the development of innovative electronics. Whether you require material for prototyping or large-scale synthesis, this powder adapts to a wide spectrum of uses in technical, industrial, and research settings.


Export Markets, Sampling & Shipping Details

Our Ti2AlN MAXene Powder commands significant market value and is shipped to leading international markets, including the United States, Europe, and Asia. We supply samples to qualified buyers and provide prompt delivery from Indian FOB ports. As global demand rises, we ensure consistent quality, secure packaging, and transparent logistics, making us a preferred supplier for manufacturers, exporters, scientists, and developers worldwide.


FAQs of Ti2AlN MAXene Powder:


Q: How is Ti2AlN MAXene Powder manufactured?

A: Ti2AlN MAXene Powder is synthesized using a combination of solid-state reaction and wet etching methods, ensuring high purity and uniform nanoscopic particle size.

Q: What are the key benefits of using Ti2AlN MAXene Powder in advanced applications?

A: Its high electrical conductivity, exceptional thermal stability, and expansive surface area make it ideal for energy storage, supercapacitors, electromagnetic shielding, sensors, and catalytic processes.

Q: When should Ti2AlN MAXene Powder be used for best performance?

A: For optimal results, it should be used within 24 months if stored in a sealed container in a cool, dry environment to maintain its unique properties and particle integrity.

Q: Where can I purchase Ti2AlN MAXene Powder and in what quantities is it available?

A: You can shop now for Ti2AlN MAXene Powder through authorized dealers, exporters, manufacturers, and suppliers in India, available in 1 g, 10 g, and 100 g sealed packs.

Q: What special precautions should be taken during handling and storage?

A: Store the powder in a sealed container in a dry, cool place to limit exposure to moisture and atmospheric contaminants, preserving its stability and effectiveness for up to 24 months.

Q: How does the high surface area impact the materials usage?

A: The high surface area is particularly advantageous for catalysis, energy storage, and sensor technologies, enabling enhanced reactivity and efficient material use in specialized applications.

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