Titanium Aluminum Carbide (Ti3AlC2) MAX Phase Micron Powder, APS: 325 Mesh, Purity: 99+ %

Price range: $74.00 through $559.00

Titanium Aluminum Carbide (Ti₃AlC₂) MAX Phase Micron Powder
APS: 325 Mesh, Purity: 99+%

Titanium Aluminum Carbide is a ternary carbide material from the MAX phase family, featuring a unique nanolaminated atomic structure that combines the characteristics of metals and ceramics. Its crystal structure contains TiₓCᵧ layers separated by Al atomic planes, creating a natural composite architecture. This arrangement provides ceramic-like high-temperature stability and stiffness along with metallic properties such as electrical conductivity, thermal shock resistance, and damage tolerance. Unlike conventional ceramics, Ti₃AlC₂ allows dislocation movement through kink-band formation, enabling excellent machinability and plastic deformation at elevated temperatures while avoiding brittle failure.

Technical Properties:

Property Value
Compound Formula Ti₃AlC₂
Molecular Weight 194.605 g/mol
Melting Point 2100 °C
Density 2.36 g/cm³ (20 °C)
Appearance Gray
Compressive Strength 764 MPa
Bending Strength 375±15 MPa
Vickers Hardness 3.5 GPa
Youngs Modulus 297 GPa

Applications

MXene (Ti₃C₂Tₓ) Synthesis: Ti₃AlC₂ serves as a primary precursor for MXene production. By selectively removing aluminum layers, 2D Ti₃C₂Tₓ nanosheets are produced for applications including electromagnetic interference (EMI) shielding, high-rate energy storage, and advanced biosensors.

High-Temperature Structural Components: Due to its ability to form protective self-healing alumina scales during oxidation, Ti₃AlC₂ is suitable for applications above 1000°C, including turbine components, high-temperature heat exchangers, and kiln furniture requiring excellent thermal shock resistance.

Advanced Energy Storage: Used in lithium-ion batteries and supercapacitors due to its metallic-like electrical conductivity, efficient electron transport capability, and chemical stability during repeated charge-discharge cycles.

Tribology and Conductive Wear Parts: Its basal plane slip mechanism provides natural self-lubricating characteristics, making it suitable for electrical brushes, pantographs, and sliding bearings requiring electrical conductivity and low friction.

Aerospace and Defense: The combination of low density and high elastic modulus enables Ti₃AlC₂ utilization in lightweight ballistic armor and aerospace structural components exposed to extreme mechanical loads and corrosive environments.

Size: 25gr, 100gr, 500gr, 1000gr

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