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Published on: August 2, 2019
Quantum frequency doubling in the topological insulator Bi2Se3
Pan He1,2, Hiroki Isobe3, Dapeng Zhu1
1Department of Electrical and Computer Engineering, National University of Singapore, Singapore, 117576, Singapore.
Researchers discovered electric frequency doubling in topological insulators without Berry curvature dipole (BCD). This novel effect, driven by skew scattering, offers potential for advanced nonlinear electronic devices.
Area of Science:
- Condensed Matter Physics
- Materials Science
- Quantum Materials
Background:
- Nonlinear Hall effect and frequency doubling were previously linked to Berry curvature dipole (BCD) in time-reversal-invariant materials.
- Topological insulators possess unique surface states with inherent chirality.
Purpose of the Study:
- To investigate electric frequency doubling in topological insulators without BCD.
- To identify the underlying mechanism responsible for this novel nonlinear electric effect.
Main Methods:
- Experimental observation of transverse voltage in response to AC current on Bi2Se3 surface.
- Symmetry analysis to distinguish between BCD and other mechanisms.
- Theoretical introduction of Berry curvature triple to explain skew scattering.
Main Results:
- Observed electric frequency doubling on the surface of Bi2Se3 under zero magnetic field, independent of BCD.
- The frequency-doubling voltage exhibited threefold rotational symmetry, inconsistent with BCD.
- Identified skew scattering, originating from the topological surface state's chirality, as the dominant mechanism.
Conclusions:
- Demonstrated a novel route to electric frequency doubling in topological insulators by harnessing skew scattering.
- Introduced the Berry curvature triple as a key concept for understanding high-order nonlinear effects.
- This finding opens avenues for developing giant second-order nonlinear electric effects in high-mobility quantum materials.
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