| Literature DB >> 27494639 |
Lili Gui1, Shahin Bagheri1, Nikolai Strohfeldt1, Mario Hentschel1, Christine M Zgrabik2, Bernd Metzger1, Heiko Linnenbank1, Evelyn L Hu2, Harald Giessen1.
Abstract
Titanium nitride (TiN) is a novel refractory plasmonic material which can sustain high temperatures and exhibits large optical nonlinearities, potentially opening the door for high-power nonlinear plasmonic applications. We fabricate TiN nanoantenna arrays with plasmonic resonances tunable in the range of about 950-1050 nm by changing the antenna length. We present second-harmonic (SH) spectroscopy of TiN nanoantenna arrays, which is analyzed using a nonlinear oscillator model with a wavelength-dependent second-order response from the material itself. Furthermore, characterization of the robustness upon strong laser illumination confirms that the TiN antennas are able to endure laser irradiation with high peak intensity up to 15 GW/cm(2) without changing their optical properties and their physical appearance. They outperform gold antennas by one order of magnitude regarding laser power sustainability. Thus, TiN nanoantennas could serve as promising candidates for high-power/high-temperature applications such as coherent nonlinear converters and local heat sources on the nanoscale.Entities:
Keywords: Nanooptics; nonlinear optics; refractory plasmonics; second-harmonic generation; spectroscopy; titanium nitride
Year: 2016 PMID: 27494639 DOI: 10.1021/acs.nanolett.6b02376
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189