Introduction to Ti3alc2 Max Phase
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The Ti3AlC2 MAX-phase markedly reduces the dehydrogenation temperature of the MgH2 to 246 °C for the sample with 5 wt% of Ti3AlC2 MAX-phase and to 236 °C for the sample with 7 %wt.
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These results unveil the potential of Ti3AlC2 MAX-phase material for implementation as practical and cost-effective SAs.
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The influence of the type and concentration of functional groups on MXene's magnetic properties was investigated by studying Ti3C2Tx samples obtained by etching the aluminum layer from the Ti3AlC2 MAX phase using (1) hydrofluoric acid, (2) chlorosulfonic acid and (3) hydrofluoric acid followed by chlorosulfonic acid.
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5 vol% nanolayered Ti3AlC2 MAX phase particles.
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An elegant exfoliations approach was used to prepare a two dimensional (2D) metal carbide Ti3C2 MXene from layered Ti3AlC2 MAX phase by removing ‘Al’ layer by chemical etching.
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With the indicated carbon precursors, we are able to prepare nanostructured composite materials containing titanium carbide and the Ti2AlC MAX phase, while the Ti3AlC2 MAX phase is formed under specific conditions in the Ti−Al−С6H12N4 and Ti−Al−aC powder systems.
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This study has investigated the mechanical and tribological performance of epoxy composites filled with different contents of Ti3AlC2 MAX phase particles.
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While, the synthesis of Ti3C2Tx MXene was done using selective etching of Ti3AlC2 MAX phase.
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