DOE OSTI · 1886923
Probing topological phase transitions using high-harmonic generation
Abstract
We report the prediction and realization of topological insulators have sparked great interest in experimental approaches to the classification of materials. The phase transition between non-trivial and trivial topological states is important, not only for basic materials science but also for next-generation technology, such as dissipation-free electronics. It is therefore crucial to develop advanced probes that are suitable for a wide range of samples and environments. Here we demonstrate that circularly polarized laser-field-driven high-harmonic generation is distinctly sensitive to the non-trivial and trivial topological phases in the prototypical three-dimensional topological insulator bismuth selenide. The phase transition is chemically initiated by reducing the spin–orbit interaction strength through the substitution of bismuth with indium atoms. We find strikingly different high-harmonic responses of trivial and non-trivial topological surface states that manifest themselves as a conversion efficiency and elliptical dichroism that depend both on the driving laser ellipticity and the crystal orientation. The origins of the anomalous high-harmonic response are corroborated by calculations using the semiconductor optical Bloch equations with pairs of surface and bulk bands. As a purely optical approach, this method offers sensitivity to the electronic structure of the material, including its nonlinear response, and is compatible with a wide range of samples and sample environments.
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Heide, Christian, Kobayashi, Yuki, Baykusheva, Denitsa R., Jain, Deepti, Sobota, Jonathan A., Hashimoto, Makoto, Kirchmann, Patrick S., Oh, Seongshik, Heinz, Tony F., Reis, David A., Ghimire, Shambhu. 2022-08-18. Probing topological phase transitions using high-harmonic generation. https://doi.org/10.1038/s41566-022-01050-7
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