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Slide and twist: manipulating polarization in multilayer hexagonal boron-nitride
Sanber Vizcaya1, Felipe Pérez Riffo1, Juan M Florez1
1Grupo de Simulaciones, Departamento de Física, Universidad Técnica Federico Santa María, Valparaíso 2390123, Chile. sanberjosevizcaya@gmail.com.
Researchers discovered how to control polarization in multilayer hexagonal boron nitride (hBN) through layer sliding. This method offers experimentally viable pathways for advanced electronic device fabrication.
Area of Science:
- Materials Science
- Condensed Matter Physics
- Nanotechnology
Background:
- Ferroelectricity in layered materials offers potential for novel electronic devices.
- Controlling out-of-plane polarization in hexagonal boron nitride (hBN) multilayers is crucial for device applications.
- Understanding the energy landscape of layer sliding is key to manipulating polarization.
Purpose of the Study:
- To investigate across-layer sliding ferroelectricity in multilayer hexagonal boron nitride (hBN).
- To identify viable methods for controlling and reversing out-of-plane polarization.
- To explore the impact of stacking configurations and layer rotations on polarization behavior.
Main Methods:
- Simulations of sliding single or dual layers in various hBN stacking configurations.
- Calculation of energy barriers for polarization reversal.
- Analysis of polarization stability during sliding.
- Investigation of rotated multilayer structures and their polarization characteristics.
Main Results:
- Identified experimentally viable methods for polarization reversal with energy barriers of 5-30 meV per formula unit (f.u.).
- Found single-interface sliding to be more energetically favorable than multiple-interface sliding.
- Observed stable polarization plateaus during specific sliding pathways.
- Demonstrated consistent net out-of-plane polarization in rotated multilayer structures.
- Showcased polarization reversal in trilayer ABT structures via combined rotation and sliding.
Conclusions:
- Across-layer sliding provides a feasible route for controlling ferroelectricity in multilayer hBN.
- The identified low energy barriers support the fabrication of devices based on these multilayer structures.
- Similar phenomena in hexagonal gallium nitride (hGaN) suggest broader applicability in polar materials.
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