Product Features:
Research on MAX phases dates back to the 1960s, when Nowotny and others first proposed the concept of ternary transition metal carbides or nitrides. In 2000, Barsoum collectively referred to such materials as "Mn+1AXn phases" (abbreviated as MAX phases), where M represents a transition metal element, A denotes a main group element, and X stands for C or N. Titanium aluminum carbide is a member of the MAX phase ceramic family.
Product Parameters:
Item Number | Average particle size | Purity (%) | Microscopic morphology | Color |
LF-Ti2AlC-W001 | 1um | 99.9 | Cube | Gray-black |
LF-Ti2AlC-W003 | 3um | 99.9 | Cube | Gray-black |
LF-Ti2AlC-W005 | 5um | 99.9 | Cube | Gray-black |
LF-Ti2AlC-W008 | 8um | 99.9 | Cube | Gray-black |
LF-Ti2AlC-W010 | 10um | 99.9 | Cube | Gray-black |
LF-Ti2AlC-W015 | 15um | 99.9 | Cube | Gray-black |
Product Application:
In the Ti-Al-C system MAX phase, Al can rapidly diffuse during oxidation and undergo selective oxidation to form a dense Al2O3 film, preventing further oxidation of the matrix material. The microstructure of the interface between titanium aluminum carbide (Ti3AlC2 and Ti2AlC) and the generated Al2O3 endows this system material with high-temperature self-healing capability. In high-temperature environments, cracks or scratches on the material's surface are filled by this oxide, thereby restoring the material's original properties, especially its mechanical properties. This characteristic is of great significance for maintaining the material's mechanical performance, enhancing its stability and reliability, and making it more promising for application in high-temperature environments.
2. The rapid diffusion of Al and selective oxidation characteristics of titanium aluminum carbide (Ti₃AlC₂ and Ti₂AlC) at high temperatures enable self-welding of the material itself and layer-to-layer welding, respectively. The fracture toughness of the layered material obtained through self-welding of titanium aluminum carbide (Ti₃AlC₂ and Ti₂AlC) is significantly improved compared to that of the single-phase material.
3. Similarly, by exploiting the weak bonding between the Al layers and TiC layers in the MAX phase titanium aluminum carbide (Ti3AlC2), hydrofluoric acid (HF) can be used to etch away the Al in Ti3AlC2, thereby preparing a novel two-dimensional carbide known as "MXene," whose morphology resembles that of graphene. The excellent electrical conductivity of MXene makes it a potential material for lithium-ion batteries.
Packaging Introduction:
1. Sample test packaging as specified by the customer (<1kg/bag)
2. Sample product packaging (1kg/bag)
3. Standard Product Packaging (1kg/2kg/5kg/10kg)
Note: Inner packaging: transparent PE bag; outer packaging: vacuum-sealed aluminum foil bag. Packaging can be customized according to customer requirements.
Product Packaging:
This product is packaged with inert gas and should be stored sealed in a dry, cool environment. It should not be exposed to air to prevent moisture-induced oxidative agglomeration, which may affect dispersion performance and usage effectiveness. The packaging quantity can be provided according to customer requirements, with sub-packaging available.