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What is a MAX phase material?
The MAX phase material is a natural layered carbonitride inorganic non-metallic material composed of three elements. It has the electrical and thermal conductivity of metal, and also has the high strength, high temperature resistance, corrosion resistance and other harsh environment service capabilities of structural ceramics. MAX phase materials have gained extensive attention in the fields of high-temperature lubrication, oxidation-resistant coatings, accident-tolerant nuclear materials, self-healing composite materials, and energy materials. MAX phase materials mainly include Ti3AlC2, Ti2AlC, Ti3SiC2, Ti2SnC, V2AlC, Cr2AlC, Ti2AlN, Nb2AlC, etc.
Transition metal carbides and nitrides, known as Mxenes. MXenes are formed by selectively etching an elemental MAX phase with metallic conductivity, connecting layered solids such as Ti2AlC, Ti3AlC2 and Ta4AlC3 through strong metallic, ionic and covalent bonds. The Mxenes combine with hydroxyl and oxygen on the surface of transition metal carbides to terminate the metal conductivity. It is electrically conductive in nature.
What are MAX phase materials used for?
Titanium carbide has the properties of metals and ceramics: it has the same electrical and thermal conductivity as metals, high elastic modulus and excellent high temperature mechanical properties similar to ceramics, and also has good thermal shock resistance and damage resistance. and excellent chemical resistance. MAX phase ceramics have both the excellent properties of metals and ceramics, and have great application potential in many high-tech fields such as aerospace, high-speed rail, and nuclear industry.
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Researchers at the Centre for Translational Atomic Materials at Swinburne University of Technology, Melbourne, Australia have developed a new graphene film that absorbs more than 90% of sunlight while eliminating most of the infrared thermal emission losses, a highly efficient A solar-heated metamaterial capable of rapidly heating to 83 degrees Celsius (181 degrees Fahrenheit) in an open environment with minimal heat loss. Proposed applications for the film include thermal energy harvesting and storage, solar thermal power generation, and seawater desalination.
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