Temperature‐Dependent Anharmonic Phonons in Quantum Paraelectric KTaO3 by First Principles and Machine‐Learned Force Fields

Author:

Ranalli Luigi12,Verdi Carla1,Monacelli Lorenzo3,Kresse Georg1,Calandra Matteo4,Franchini Cesare15ORCID

Affiliation:

1. Faculty of Physics and Center for Computational Materials Science University of Vienna Kolingasse 14‐16 1090 Vienna Austria

2. Vienna Doctoral School in Physics University of Vienna Boltzmanngasse 5 1090 Vienna Austria

3. “Sapienza” Dipartimento di Fisica University of Rome Piazzale Aldo Moro 5 00185 Rome Italy

4. Department of Physics University of Trento Via Sommarive 14 I‐38123 Povo Italy

5. Department of Physics and Astronomy ”Augusto Righi” Alma Mater Studiorum ‐ Università di Bologna 40127 Bologna Italy

Abstract

AbstractUnderstanding collective phenomena in quantum materials from first principles is a promising route toward engineering materials properties and designing new functionalities. This work examines the quantum paraelectric state, an elusive state of matter characterized by the smooth saturation of the ferroelectric instability at low temperature due to quantum fluctuations associated with anharmonic phonon effects. The temperature‐dependent evolution of the soft ferroelectric phonon mode in the quantum paraelectric KTaO3 in the range 0–300 K is modeled by combining density functional theory (DFT) calculations with the stochastic self‐consistent harmonic approximation assisted by an on‐the‐fly machine‐learned force field. The calculated data show that including anharmonic terms is essential to stabilize the spurious imaginary ferroelectric phonon predicted by DFT in the harmonic approximation, in agreement with experiments. Augmenting the DFT workflow with machine‐learned force fields allows for efficient stochastic sampling of the configuration space using large supercells in a wide temperature range, inaccessible to conventional ab initio protocols. This work proposes a robust computational workflow capable of accounting for collective behaviors involving different degrees of freedom and occurring at large time/length scales, paving the way for precise modeling and control of quantum effects in materials.

Funder

Austrian Science Fund

Publisher

Wiley

Subject

Electrical and Electronic Engineering,Computational Theory and Mathematics,Condensed Matter Physics,Mathematical Physics,Nuclear and High Energy Physics,Electronic, Optical and Magnetic Materials,Statistical and Nonlinear Physics

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