AI Article Synopsis

  • Photonic crystals (PhCs) are optical structures that manipulate light by creating a photonic band gap (PBG) through their dielectric properties, traditionally fixed and static.
  • Recent advancements target switchable PhCs, especially using vanadium dioxide (VO), which changes its state and optical properties near room temperature, allowing for a reversible adjustment of the PBG.
  • This research introduces a fabrication method for 3D switchable VO photonic crystals, demonstrating significant control over PBG at specific wavelengths in the near-infrared region, paving the way for versatile photonic devices that can adapt their functionalities.

Article Abstract

Photonic crystals (PhCs) are optical structures characterized by the spatial modulation of the dielectric function, which results in the formation of a photonic band gap (PBG) in the frequency spectrum. This PBG blocks the propagation of light, enabling filtering, confinement, and manipulation of light. Most of the research in this field has concentrated on static PhCs, which have fixed structural and material parameters, leading to a constant PBG. However, the growing demand for adaptive photonic devices has led to an increased interest in switchable PhCs, where the PBG can be reversibly activated or shifted. Vanadium dioxide (VO) is particularly notable for its near-room-temperature insulator-to-metal transition (IMT), which is accompanied by significant changes in its optical properties. Here, we demonstrate a fabrication strategy for switchable three-dimensional (3D) PhCs, involving sacrificial templates and a VO atomic layer deposition (ALD) process in combination with an accurately controlled annealing procedure. The resulting VO inverse opal (IO) PhC achieves substantial control over PBG in the near-infrared (NIR) region. Specifically, the synthesized VO IO PhC exhibits PBGs near 1.49 and 1.03 μm in the dielectric and metallic states of the VO material, respectively, which can be reversibly switched by adjusting the external temperature. Furthermore, a temperature-dependent switch from a narrow-band NIR reflector to a broad-band absorber is revealed. This work highlights the potential of integrating VO into 3D templates in the development of switchable photonics with complex 3D structures, offering a promising avenue for the advancement of photonic devices with adaptable functionalities.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11647753PMC
http://dx.doi.org/10.1021/acsami.4c13789DOI Listing

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