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Robust topologically protected transport in photonic crystals at telecommunication wavelengths.

Publication ,  Journal Article
Shalaev, MI; Walasik, W; Tsukernik, A; Xu, Y; Litchinitser, NM
Published in: Nature nanotechnology
January 2019

Photonic topological insulators offer the possibility to eliminate backscattering losses and improve the efficiency of optical communication systems. Despite considerable efforts, a direct experimental demonstration of theoretically predicted robust, lossless energy transport in topological insulators operating at near-infrared frequencies is still missing. Here, we combine the properties of a planar silicon photonic crystal and the concept of topological protection to design, fabricate and characterize an optical topological insulator that exhibits the valley Hall effect. We show that the transmittances are the same for light propagation along a straight topological interface and one with four sharp turns. This result quantitatively demonstrates the suppression of backscattering due to the non-trivial topology of the structure. The photonic-crystal-based approach offers significant advantages compared with other realizations of photonic topological insulators, such as lower propagation losses, the presence of a band gap for light propagating in the crystal-slab plane, a larger operating bandwidth, a much smaller footprint, compatibility with complementary metal-oxide-semiconductor fabrication technology, and the fact that it allows for operation at telecommunications wavelengths.

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Published In

Nature nanotechnology

DOI

EISSN

1748-3395

ISSN

1748-3387

Publication Date

January 2019

Volume

14

Issue

1

Start / End Page

31 / 34

Related Subject Headings

  • Nanoscience & Nanotechnology
 

Citation

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Shalaev, M. I., Walasik, W., Tsukernik, A., Xu, Y., & Litchinitser, N. M. (2019). Robust topologically protected transport in photonic crystals at telecommunication wavelengths. Nature Nanotechnology, 14(1), 31–34. https://doi.org/10.1038/s41565-018-0297-6
Shalaev, Mikhail I., Wiktor Walasik, Alexander Tsukernik, Yun Xu, and Natalia M. Litchinitser. “Robust topologically protected transport in photonic crystals at telecommunication wavelengths.Nature Nanotechnology 14, no. 1 (January 2019): 31–34. https://doi.org/10.1038/s41565-018-0297-6.
Shalaev MI, Walasik W, Tsukernik A, Xu Y, Litchinitser NM. Robust topologically protected transport in photonic crystals at telecommunication wavelengths. Nature nanotechnology. 2019 Jan;14(1):31–4.
Shalaev, Mikhail I., et al. “Robust topologically protected transport in photonic crystals at telecommunication wavelengths.Nature Nanotechnology, vol. 14, no. 1, Jan. 2019, pp. 31–34. Epmc, doi:10.1038/s41565-018-0297-6.
Shalaev MI, Walasik W, Tsukernik A, Xu Y, Litchinitser NM. Robust topologically protected transport in photonic crystals at telecommunication wavelengths. Nature nanotechnology. 2019 Jan;14(1):31–34.

Published In

Nature nanotechnology

DOI

EISSN

1748-3395

ISSN

1748-3387

Publication Date

January 2019

Volume

14

Issue

1

Start / End Page

31 / 34

Related Subject Headings

  • Nanoscience & Nanotechnology