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<titleInfo><title>Probing topological phase transitions using high-harmonic generation</title></titleInfo>


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<name type="personal">
  <namePart type="given">Christian</namePart>
  <namePart type="family">Heide</namePart>
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  <namePart type="given">Yuki</namePart>
  <namePart type="family">Kobayashi</namePart>
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  <namePart type="given">Denitsa Rangelova</namePart>
  <namePart type="family">Baykusheva</namePart>
  <role><roleTerm type="text">author</roleTerm> </role><identifier type="local">71b4d059-2a03-11ee-914d-dfa3beed6530</identifier></name>
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  <namePart type="given">Deepti</namePart>
  <namePart type="family">Jain</namePart>
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  <namePart type="given">Jonathan A.</namePart>
  <namePart type="family">Sobota</namePart>
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  <namePart type="given">Makoto</namePart>
  <namePart type="family">Hashimoto</namePart>
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  <namePart type="given">Patrick S.</namePart>
  <namePart type="family">Kirchmann</namePart>
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  <namePart type="given">Seongshik</namePart>
  <namePart type="family">Oh</namePart>
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<name type="personal">
  <namePart type="given">Tony F.</namePart>
  <namePart type="family">Heinz</namePart>
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  <namePart type="given">David A.</namePart>
  <namePart type="family">Reis</namePart>
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  <namePart type="given">Shambhu</namePart>
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<abstract lang="eng">The prediction and realization of topological insulators have sparked great interest in experimental approaches to the classification of materials1,2,3. 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 electronics4. 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 selenide5. The phase transition is chemically initiated by reducing the spin–orbit interaction strength through the substitution of bismuth with indium atoms6,7. 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.</abstract>

<originInfo><publisher>Springer Nature</publisher><dateIssued encoding="w3cdtf">2022</dateIssued>
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<language><languageTerm authority="iso639-2b" type="code">eng</languageTerm>
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<subject><topic>Atomic and Molecular Physics</topic><topic>and Optics</topic><topic>Electronic</topic><topic>Optical and Magnetic Materials</topic>
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<relatedItem type="host"><titleInfo><title>Nature Photonics</title></titleInfo>
  <identifier type="issn">1749-4885</identifier>
  <identifier type="eIssn">1749-4893</identifier><identifier type="doi">10.1038/s41566-022-01050-7</identifier>
<part><detail type="volume"><number>16</number></detail><detail type="issue"><number>9</number></detail><extent unit="pages">620-624</extent>
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<apa>Heide, C., Kobayashi, Y., Baykusheva, D. R., Jain, D., Sobota, J. A., Hashimoto, M., … Ghimire, S. (2022). Probing topological phase transitions using high-harmonic generation. &lt;i&gt;Nature Photonics&lt;/i&gt;. Springer Nature. &lt;a href=&quot;https://doi.org/10.1038/s41566-022-01050-7&quot;&gt;https://doi.org/10.1038/s41566-022-01050-7&lt;/a&gt;</apa>
<ieee>C. Heide &lt;i&gt;et al.&lt;/i&gt;, “Probing topological phase transitions using high-harmonic generation,” &lt;i&gt;Nature Photonics&lt;/i&gt;, vol. 16, no. 9. Springer Nature, pp. 620–624, 2022.</ieee>
<chicago>Heide, Christian, Yuki Kobayashi, Denitsa Rangelova Baykusheva, Deepti Jain, Jonathan A. Sobota, Makoto Hashimoto, Patrick S. Kirchmann, et al. “Probing Topological Phase Transitions Using High-Harmonic Generation.” &lt;i&gt;Nature Photonics&lt;/i&gt;. Springer Nature, 2022. &lt;a href=&quot;https://doi.org/10.1038/s41566-022-01050-7&quot;&gt;https://doi.org/10.1038/s41566-022-01050-7&lt;/a&gt;.</chicago>
<mla>Heide, Christian, et al. “Probing Topological Phase Transitions Using High-Harmonic Generation.” &lt;i&gt;Nature Photonics&lt;/i&gt;, vol. 16, no. 9, Springer Nature, 2022, pp. 620–24, doi:&lt;a href=&quot;https://doi.org/10.1038/s41566-022-01050-7&quot;&gt;10.1038/s41566-022-01050-7&lt;/a&gt;.</mla>
<ama>Heide C, Kobayashi Y, Baykusheva DR, et al. Probing topological phase transitions using high-harmonic generation. &lt;i&gt;Nature Photonics&lt;/i&gt;. 2022;16(9):620-624. doi:&lt;a href=&quot;https://doi.org/10.1038/s41566-022-01050-7&quot;&gt;10.1038/s41566-022-01050-7&lt;/a&gt;</ama>
<short>C. Heide, Y. Kobayashi, D.R. Baykusheva, D. Jain, J.A. Sobota, M. Hashimoto, P.S. Kirchmann, S. Oh, T.F. Heinz, D.A. Reis, S. Ghimire, Nature Photonics 16 (2022) 620–624.</short>
<ista>Heide C, Kobayashi Y, Baykusheva DR, Jain D, Sobota JA, Hashimoto M, Kirchmann PS, Oh S, Heinz TF, Reis DA, Ghimire S. 2022. Probing topological phase transitions using high-harmonic generation. Nature Photonics. 16(9), 620–624.</ista>
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