Functionalities of Au2O, Au2O3, Au2O3-x, and nanosheets, including spontaneous polarization, using DFT and hybrid functional
arXiv:2601.18165 · doi:10.1016/j.physleta.2026.131367
Abstract
We used density functional theories (DFT) to investigate the properties of Au2O and Au2O3-x (x = 00.08) to reveal their remarkable functionalities. Hybrid functional theories accurately estimate the band gap (Eg) of oxides, and the present hybrid functional calculations determined Eg values of 0.96 eV for Au2O and 2.86 eV for Au2O3, which is >300% of the commonly accepted Eg of Au2O3 (0.85 eV). Moreover, we discovered spontaneous polarization (PS) in Au2O3, which is unusually large and advantageous for catalysis. The PS was retained even in 2-nm-thick Au2O3 nanosheets, similar to hyperferroelectric, generating a potential of 0.6 eV despite screening caused by surface reconstruction, which is a novel screening mechanism. Below a thickness of 0.8 nm, the PS vanished, and inversion symmetry emerged at 0.4 nm, suggesting a new approach to finding a paraelectric phase. Au2O was supersoft under shear distortion.
21 pages, 6 figures, 5 Tables. Results: Au2O3: band gap (Eg) = 2.86 eV, as opposed to the standard Eg = 0.85 eV. A substantial spontaneous polarization) down to 2nm in nanosheets. Au2O:Supersoft under shear distortion. Eg=0.96 eV
References in corpus (4)
- Restoring the density-gradient expansion for exchange in solids and surfaces
- Generalized gradient approximation for solids and their surfaces
- Hybrid exchange-correlation functional for accurate prediction of the electronic and structural properties of ferroelectric oxides
- Phase-Field Modeling of Fracture under Compression and Confinement in Anisotropic Geomaterials