| Literature DB >> 32343590 |
Zelio Fusco1, Mahdiar Taheri2, Renheng Bo1, Thanh Tran-Phu1, Hongjun Chen1, Xuyun Guo3, Ye Zhu3, Takuya Tsuzuki2, Thomas P White4, Antonio Tricoli1.
Abstract
Epsilon-near-zero (ENZ) materials offer unique properties for applications including optical clocking, nonlinear optics, and telecommunication. To date, the fabrication of ENZ materials at visible wavelengths relies mostly on the use of periodic structures, providing some manufacturing and material challenges. Here, we present the engineering of nonperiodic sodium tungsten bronzes (NaxWO3) metamaterials featuring ENZ properties in the visible spectrum. We showcase their use as efficient optical sensors, demonstrating a nonresonant sensing mechanism based on refractive index matching. Our optimized ENZ metamaterials display an unconventional blue-shift of the transmittance maximum to increasing refractive index of the surrounding environment, achieving sensitivity as high as 150 nm/RIU. Our theoretical and experimental investigations provide first insights on this sensing mechanism, establishing guidelines for the future engineering and implementation of efficient ENZ sensors. The unique optoelectronic properties demonstrated by this class of tunable NaxWO3 materials bear potential for various applications ranging from light-harvesting to optical photodetectors.Entities:
Keywords: Epsilon-near-zero; metamaterials; nonperiodic; nonresonant; sensing; sodium−tungsten-bronzes
Year: 2020 PMID: 32343590 DOI: 10.1021/acs.nanolett.0c01095
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189