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      Realization of Z 2 Topological Photonic Insulators Made from Multilayer Transition Metal Dichalcogenides

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          Abstract

          Monolayers of semiconducting transition metal dichalcogenides (TMDs) have long attracted interest for their intriguing optical and electronic properties. Recently, TMDs in their quasi-bulk form have started to show considerable promise for nanophotonics thanks to their high refractive indices, large optical anisotropy, wide transparency windows reaching to the visible, and robust room temperature excitons promising for nonlinear optics. Adherence of TMD layers to any substrate via van der Waals forces is a further key enabler for the nanofabrication of complex photonic structures requiring heterointegration. Here, we use the attractive properties of TMDs and realize topological spin-Hall photonic lattices made of arrays of triangular nanoholes in 50 to 100 nm thick WS 2 flakes exfoliated on SiO 2/Si substrates. High-quality structures are achieved by taking advantage of anisotropic dry etching dictated by the crystal axes of WS 2. Reflectance measurements at room temperature show a photonic gap opening in the near-infrared in trivial and topological phases. Unidirectional propagation along the domain interface is demonstrated in real space via circularly polarized laser excitation in samples with both zigzag and armchair domain boundaries. Finite-difference time-domain simulations are used to interpret optical spectroscopy results. Our work demonstrates the feasibility of more complex nanophotonic devices based on the layered (van der Waals) materials platform.

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          Colloquium: Topological insulators

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            Van der Waals heterostructures

            Research on graphene and other two-dimensional atomic crystals is intense and is likely to remain one of the leading topics in condensed matter physics and materials science for many years. Looking beyond this field, isolated atomic planes can also be reassembled into designer heterostructures made layer by layer in a precisely chosen sequence. The first, already remarkably complex, such heterostructures (often referred to as 'van der Waals') have recently been fabricated and investigated, revealing unusual properties and new phenomena. Here we review this emerging research area and identify possible future directions. With steady improvement in fabrication techniques and using graphene's springboard, van der Waals heterostructures should develop into a large field of their own.
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              Topological photonics

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                Author and article information

                Journal
                ACS Nano
                ACS Nano
                nn
                ancac3
                ACS Nano
                American Chemical Society
                1936-0851
                1936-086X
                18 November 2024
                26 November 2024
                : 18
                : 47
                : 32547-32555
                Affiliations
                []Department of Physics and Astronomy, University of Sheffield , Sheffield S3 7RH, U.K.
                []School of Physics, Engineering and Technology, University of York , York YO10 5DD, U.K.
                Author notes
                Author information
                https://orcid.org/0000-0003-0238-1006
                https://orcid.org/0000-0003-3320-0554
                https://orcid.org/0000-0002-2482-005X
                https://orcid.org/0000-0002-6436-7384
                https://orcid.org/0000-0002-4169-5510
                Article
                10.1021/acsnano.4c09295
                11603781
                39552053
                f88e88c6-fb96-4064-8b26-fa4b8dfacc46
                © 2024 The Authors. Published by American Chemical Society

                Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained ( https://creativecommons.org/licenses/by/4.0/).

                History
                : 11 July 2024
                : 05 November 2024
                : 29 October 2024
                Funding
                Funded by: Engineering and Physical Sciences Research Council, doi 10.13039/501100000266;
                Award ID: EP/S030751/1
                Funded by: Royal Academy of Engineering, doi 10.13039/501100000287;
                Award ID: RF/201718/17131
                Funded by: Engineering and Physical Sciences Research Council, doi 10.13039/501100000266;
                Award ID: EP/V047663/1
                Funded by: Engineering and Physical Sciences Research Council, doi 10.13039/501100000266;
                Award ID: EP/V026496/1
                Funded by: Engineering and Physical Sciences Research Council, doi 10.13039/501100000266;
                Award ID: EP/V007696/1
                Funded by: Engineering and Physical Sciences Research Council, doi 10.13039/501100000266;
                Award ID: EP/V006975/1
                Categories
                Article
                Custom metadata
                nn4c09295
                nn4c09295

                Nanotechnology
                photonic crystals,tungsten disulfide,metasurfaces,topology,2d materials,fdtd
                Nanotechnology
                photonic crystals, tungsten disulfide, metasurfaces, topology, 2d materials, fdtd

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