Effect of alloying additions on the lattice ordering of Ti$_2$AlNb intermetallic
Adilakshmi Chirumamilla, Gopalakrishnan Sai Gautam

TL;DR
This study investigates how alloying elements like Mo and W influence the lattice disordering in Ti₂AlNb intermetallics, revealing that these additions can kinetically suppress anti-site defect formation and improve high-temperature properties.
Contribution
The paper identifies Mo and W as effective alloying additions that kinetically suppress lattice disorder in Ti₂AlNb, offering a new strategy to enhance its high-temperature performance.
Findings
Mo and W reduce atomic diffusivities by 4-8 times at 823 K.
Alloying elements tend to occupy Nb sites, except V.
None of the elements effectively suppress thermodynamic anti-site formation.
Abstract
Alloys based on the orthorhombic-TiAlNb intermetallic phase (O-phase) are promising materials for high-temperature applications in jet engines, given that they can potentially replace Ni-based superalloys in some operating regions of the engines. However, the O-phase is prone to lattice disordering at high temperatures, primarily via anti-site defect formation across the Ti and Nb sites, which can reduce the material's creep resistance and high-temperature tensile properties, necessitating the need to identify strategies to mitigate the disorder. Here, we focus on identifying suitable alloying additions to suppress the disordering of the O-phase using density functional theory and nudged elastic band calculations. Specifically, we consider six different alloying additions, namely, V, Cr, Fe, Mo, Ta, and W, and examine their role in the thermodynamics of anti-site formation and the…
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