Literature DB >> 32539336

Perovskite-Gallium Phosphide Platform for Reconfigurable Visible-Light Nanophotonic Chip.

Pavel Trofimov1, Anatoly P Pushkarev1, Ivan S Sinev1, Vladimir V Fedorov2, Stéphanie Bruyère3, Alexey Bolshakov2, Ivan S Mukhin1,2, Sergey V Makarov1.   

Abstract

Reduction of the wavelength in on-chip light circuitry is critically important not only for the sake of keeping up with Moore's law for photonics but also for reaching toward the spectral ranges of operation of emerging materials, such as atomically thin semiconductors, vacancy-based single-photon emitters, and quantum dots. This requires efficient and tunable light sources as well as compatible waveguide networks. For the first challenge, halide perovskites are prospective materials that enable cost-efficient fabrication of micro- and nanolasers. On the other hand, III-V semiconductor nanowires are optimal for guiding of visible light as they exhibit a high refractive index as well as excellent shape and crystalline quality beneficial for strong light confinement and long-range waveguiding. Here, we develop an integrated platform for visible light that comprises gallium phosphide (GaP) nanowires directly embedded into compact CsPbBr3-based light sources. In our devices, perovskite microcrystals support stable room-temperature lasing and broadband chemical tuning of the emission wavelength in the range of 530-680 nm, whereas GaP nanowaveguides support efficient outcoupling of light, its subwavelength (<200 nm) confinement, and long-range guiding over distances more than 20 μm. As a highlight of our approach, we demonstrate sequential transfer and conversion of light using an intermediate perovskite nanoparticle in a chain of GaP nanowaveguides.

Entities:  

Keywords:  gallium phosphide; halide perovskite; lasing; nanowire; photonic chip; tunable microlaser

Year:  2020        PMID: 32539336     DOI: 10.1021/acsnano.0c01104

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  1 in total

1.  Anisotropic Radiation in Heterostructured "Emitter in a Cavity" Nanowire.

Authors:  Alexey Kuznetsov; Prithu Roy; Valeriy M Kondratev; Vladimir V Fedorov; Konstantin P Kotlyar; Rodion R Reznik; Alexander A Vorobyev; Ivan S Mukhin; George E Cirlin; Alexey D Bolshakov
Journal:  Nanomaterials (Basel)       Date:  2022-01-13       Impact factor: 5.076

  1 in total

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