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A number of binary nitrides have been identified as active ammonia synthesis catalysts in the literature, including those of molybdenum [10, 12, 13, 14], uranium [15, 16], vanadium [17, 18], rhenium [19, 20] and cerium [21].
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Transition metal nitrides have been investigated as both catalyst and catalyst support materials in different energy devices, including dye-sensitized solar cells, fuel cells, and batteries.
Thus, several forms of nitriding have been developed in order to improve surface properties and bioperformance of Ti-based biomaterials.
The use of graphene and boron nitride has been explored earlier for ultrathin circuitry [11].
Boron nitride has been produced in amorphous (a-BN) and crystalline forms.
Recently, tetragonal, hexagonal and dodecagonal cycles for carbon, boron nitride (BNNT) and aluminum nitride nanotubes have been proposed [22].
Nanoscale inhomogeneities in stiffness on the titanium nitride films have been attributed to softer substoichiometric titanium nitride species and/or trapped subsurface gas.
Dense silicon nitride compacts have been obtained by this techniques at temperatures 1500 1700 °C.
Furthermore, boron nitride nanotubes have been shown to interfere with the MTT cell viability test.
Furthermore, BN analogs of many carbon nanostructures such as boron-nitride nanotubes, boron-nitride nanosheets, etc., have been well studied and reported.
Zirconium oxide nitrides, for instance, have been shown to be active catalysts for ammonia decomposition [14].
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