English

The origin of the vanadium dioxide transition entropy

Materials Science 2019-03-06 v2

Abstract

The reversible metal-insulator transition in VO2_2 at TC340T_\text{C} \approx 340 K has been closely scrutinized yet its thermodynamic origin remains ambiguous. We discuss the origin of the transition entropy by calculating the electron and phonon contributions at TCT_\text{C} using density functional theory. The vibration frequencies are obtained from harmonic phonon calculations, with the soft modes that are imaginary at zero temperature renormalized to real values at TCT_\text{C} using experimental information from diffuse x-ray scattering at high-symmetry wavevectors. Gaussian Process Regression is used to infer the transformed frequencies for wavevectors across the whole Brillouin zone, and in turn compute the finite temperature phonon partition function to predict transition thermodynamics. Using this method, we predict the phase transition in VO2_2 is driven five to one by phonon entropy over electronic entropy, and predict a total transition entropy that accounts for 9595 % of the calorimetric value.

Keywords

Cite

@article{arxiv.1809.10703,
  title  = {The origin of the vanadium dioxide transition entropy},
  author = {Thomas Ambrose Mellan and Hao Wang and Udo Schwingenschlögl and Ricardo Grau-Crespo},
  journal= {arXiv preprint arXiv:1809.10703},
  year   = {2019}
}