| Literature DB >> 33568636 |
Andreas Heßler1, Sophia Wahl2, Till Leuteritz3, Antonios Antonopoulos2, Christina Stergianou2, Carl-Friedrich Schön2, Lukas Naumann3, Niklas Eicker2, Martin Lewin2, Tobias W W Maß2, Matthias Wuttig2, Stefan Linden3, Thomas Taubner4.
Abstract
The high dielectric optical contrast between the amorphous and crystalline structural phases of non-volatile phase-change materials (PCMs) provides a promising route towards tuneable nanophotonic devices. Here, we employ the next-generation PCM In3SbTe2 (IST) whose optical properties change from dielectric to metallic upon crystallization in the whole infrared spectral range. This distinguishes IST as a switchable infrared plasmonic PCM and enables a programmable nanophotonics material platform. We show how resonant metallic nanostructures can be directly written, modified and erased on and below the meta-atom level in an IST thin film by a pulsed switching laser, facilitating direct laser writing lithography without need for cumbersome multi-step nanofabrication. With this technology, we demonstrate large resonance shifts of nanoantennas of more than 4 µm, a tuneable mid-infrared absorber with nearly 90% absorptance as well as screening and nanoscale "soldering" of metallic nanoantennas. Our concepts can empower improved designs of programmable nanophotonic devices for telecommunications, (bio)sensing and infrared optics, e.g. programmable infrared detectors, emitters and reconfigurable holograms.Entities:
Year: 2021 PMID: 33568636 PMCID: PMC7876017 DOI: 10.1038/s41467-021-21175-7
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919