Establishing the Temperature-Dependent Synthesis Window of β‑TaON by Coupling Predictive Thermodynamic Modeling with
Aksha Gilbert Prince1, Yuanchen Gao1, Dmitri LaBelle1
1Department of Materials Science and Engineering, Drexel University, Philadelphia, Pennsylvania 19104, United States.
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Phase-pure synthesis has been a major challenge for transition-metal oxynitrides due to their sensitivity to synthesis conditions and limited understanding of their underlying thermodynamics. Beta-phase tantalum oxynitride (β-TaON), a promising candidate for (photo)-catalytic applications, is particularly difficult to reproducibly synthesize as a single-phase material at equilibrium. In this study, we developed and experimentally validated a thermodynamic model to identify optimal conditions for the single-phase synthesis of β-TaON via ammonolysis reactions. Gibbs free energies of reactant, product, and byproduct phases were predicted as a function of temperature using first-principles calculations with the quasi-harmonic approximation (QHA), as well as implemented from available thermodynamic databases. Utilizing these Gibbs energies, the calculation of phase diagrams (CALPHAD) approach was employed to develop a thermodynamic model for assessing the phase equilibria associated with the ammonolysis reactions, enabling prediction of temperature-dependent synthesis windows for β-TaON. Experimental syntheses were carried out across a range of temperatures and gas conditions, validating model predictions and iteratively refining the model accuracy through an integrated feedback loop. Co-flown gases beyond ammonia and water were also shown to be influential on β-TaON phase purity and reaction kinetics. A three-dimensional (3D) phase diagram predicted on the axes of parameters that can be controlled during practical synthesis quantitatively reveals a narrow, phase-pure synthesis window for β-TaON.


