Cluster Sliding Ferroelectricity in Trilayer Quasi-Hexagonal C
arXiv:2407.13985 · doi:10.1038/s41524-024-01511-3
Abstract
Electric polarization typically originates from non-centrosymmetric charge distributions in compounds. In elemental crystalline materials, chemical bonds between atoms of the same element favor symmetrically distributed electron charges and centrosymmetric structures, making elemental ferroelectrics rare. Compared to atoms, elemental clusters are intrinsically less symmetric and can have various preferred orientations when they are assembled to form crystals. Consequently, the assembly of clusters with different orientations tends to break the inversion symmetry. By exploiting this concept, we show that sliding ferroelectricity naturally emerges in trilayer quasi-hexagonal phase (qHP) C, a cluster-assembled carbon allotrope recently synthesized. Compared to many metallic or semi-metallic elemental ferroelectrics, trilayer qHP C's have sizable band gaps and several ferroelectric structures, which are distinguishable by measuring their second-harmonic generation (SHG) responses. Some of these phases show both switchable out-of-plane and in-plane polarizations on the order of 0.2 pC/m. The out-of-plane and in-plane polarizations can be switched independently and enable an easy-to-implement construction of Van der Waals homostructures with ferroelectrically switchable chirality.
5 figures
References in corpus (11)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Twistronics: Manipulating the Electronic Properties of Two-dimensional Layered Structures through their Twist Angle
- Sliding induced multiple polarization states in two-dimensional ferroelectrics
- Coupled Ferroelectricity and Superconductivity in Bilayer -MoTe
- General Theory for Bilayer Stacking Ferroelectricity
- Artificial Multiferroics and Enhanced Magnetoelectric Effect in van der Waals Heterostructures
- Atypical sliding and Moire ferroelectricity in pure multilayer graphene
- Stability and strength of monolayer polymeric C
- Two-dimensional ferroelectrics from high throughput computational screening
- Phase competition and negative piezoelectricity in interlayer-sliding ferroelectric ZrI
- Mixed-Stacking Few-Layer Graphene as an Elemental Weak Ferroelectric Material