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Structures and Properties of $\beta$-Titanium Doping Trace Transition Metal Elements: a Density Functional Theory Study

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arxiv 2004.13950 v1 pith:JIKZHR3M submitted 2020-04-29 cond-mat.mtrl-sci cond-mat.mes-hallphysics.comp-ph

classification cond-mat.mtrl-scicond-mat.mes-hallphysics.comp-ph
keywords betatitaniumdensitydopingformationmetaltracetransition
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abstract

We systematically calculate the structure, formation enthalpy, formation free energy, elastic constants and electronic structure of Ti$_{0.98}$X$_{0.02}$ system by density functional theory (DFT) simulations to explore the effect of transition metal X (X=Ag, Cd, Co, Cr, Cu, Fe, Mn, Mo, Nb, Ni, Pd, Rh, Ru, Tc, and Zn) on the stability mechanism of $\beta$-titanium. Based on our calculations, the results of formation enthalpy and free energy show that adding trace X is beneficial to the thermodynamic stability of $\beta$-titanium. This behavior is well explained by the density of state (DOS). However, the tetragonal shear moduli of Ti$_{0.98}$X$_{0.02}$ systems are negative, indicating that $\beta$-titanium doping with a low concentration of X is still elastically unstable at 0 K. Therefore, we theoretically explain that $\beta$-titanium doping with trace transition metal X is unstable in the ground state.

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  1. Optimizing Superconducting Nb Film Cavities by Mitigating Medium-Field Q-Slope Through Annealing

    physics.acc-ph 2025-07 conditional novelty 6.0 of 10

    Annealing a HiPIMS-deposited niobium film on a bulk niobium cavity at up to 800 C reduces the medium-field Q-slope and raises the quench field from 10 to 17.5 MV/m.

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