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Transverse response from anisotropic Fermi surfaces
1School of Physics, University of Hyderabad, Prof. C. R. Rao Road, Gachibowli, Hyderabad 500046, India.
Summary
Anisotropic Fermi surfaces can create transverse electrical signals without magnetic fields. This research shows broken symmetry in electron transport leads to controllable transverse conductivity in materials.
Area of Science:
- Condensed Matter Physics
- Solid State Physics
- Materials Science
Background:
- Electron transport phenomena often rely on magnetic fields or topological properties like Berry curvature.
- Anisotropic bandstructures and Fermi surfaces are crucial for understanding electronic properties in many materials.
Purpose of the Study:
- To demonstrate that anisotropic and rotated Fermi surfaces can generate transverse electrical responses without external magnetic fields.
- To explore the role of broken $k_y \to -k_y$ symmetry in generating transverse conductivity.
- To establish a symmetry-based method for engineering transverse signals in low-symmetry materials.
Main Methods:
- Utilizing a two-dimensional continuum model to analyze bandstructure symmetry.
- Constructing a lattice model with tailored hopping parameters to replicate continuum dispersion.
- Employing a multiterminal geometry and the Büttiker-probe method for experimental simulation.
Main Results:
- A finite transverse conductivity arises from broken $k_y \to -k_y$ symmetry in anisotropic bandstructures.
- The transverse voltage directly corresponds to the predicted transverse response and scales with anisotropy.
- The effect diminishes when mirror symmetry is restored, unlike quantized responses in the quantum Hall effect.
Conclusions:
- Anisotropic Fermi surfaces offer a novel route to generate transverse electrical signals.
- This phenomenon provides a non-magnetic, non-topological mechanism for transverse response engineering.
- The findings open possibilities for designing new electronic devices based on material symmetry properties.
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