Semiconducting nonperovskite ferroelectric oxynitride designed ab initio
arXiv:2302.14671 · doi:10.1063/5.0141987
Abstract
Recent discovery of HfO2-based and nitride-based ferroelectrics that are compatible to the semiconductor manufacturing process have revitalized the field of ferroelectric-based nanoelectronics. Guided by a simple design principle of charge compensation and density functional theory calculations, we discover HfO2-like mixed-anion materials, TaON and NbON, can crystallize in the polar Pca21 phase with a strong thermodynamic driving force to adopt anion ordering spontaneously. Both oxynitrides possess large remnant polarization, low switching barriers, and unconventional negative piezoelectric effect, making them promising piezoelectrics and ferroelectrics. Distinct from HfO2 that has a wide band gap, both TaON and NbON can absorb visible light and have high charge carrier mobilities, suitable for ferroelectric photovoltaic and photocatalytic applications. This new class of multifunctional nonperovskite oxynitride containing economical and environmentally benign elements offer a platform to design and optimize high-performing ferroelectric semiconductors for integrated systems.
References in corpus (9)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Advanced capabilities for materials modelling with Quantum ESPRESSO
- BoltzTraP. A code for calculating band-structure dependent quantities
- Pathways Towards Ferroelectricity in Hafnia
- Ferroelectric Materials for Solar Energy Conversion: Photoferroics Revisited
- Towards Direct-Gap Silicon Phases by the Inverse Band Structure Design Approach
- Origin of Negative Longitudinal Piezoelectric Effect
- Lattice dynamics and ferroelectric properties of the nitride perovskite
- Onsite and intersite electronic correlations in the Hubbard model for halide perovskites