| Literature DB >> 30167257 |
Meng-Xin Ren1,2, Wei Wu1, Wei Cai1, Biao Pi1, Xin-Zheng Zhang1, Jing-Jun Xu1.
Abstract
Plasmonic metasurfaces have recently attracted much attention because of their novel characteristics with respect to light polarization and wave front control on deep-subwavelength scales. The development of metasurfaces with reconfigurable optical responses is opening new opportunities in high-capacity communications, real-time holograms and adaptive optics. Such tunable devices have been developed in the mid-infrared spectral range and operated in light intensity modulation schemes. Here we present a novel optically reconfigurable hybrid metasurface that enables polarization tuning at optical frequencies. The functionality of tuning is realized by switching the coupling conditions between the plasmonic modes and the binary isomeric states of an ethyl red switching layer upon light stimulation. We achieved more than 20° nonlinear changes in the transmitted polarization azimuth using just 4 mW of switching light power. Such design schemes and principles could be easily applied to dynamically adjust the functionalities of other metasurfaces.Entities:
Keywords: azo ethyl red; metasurfaces; nonlinear polarization modulation; photoisomerization; reconfigurable
Year: 2017 PMID: 30167257 PMCID: PMC6062238 DOI: 10.1038/lsa.2016.254
Source DB: PubMed Journal: Light Sci Appl ISSN: 2047-7538 Impact factor: 17.782
Figure 1Polarization effects of the plasmonic nanostructure. (a) Because the metasurface is chiral and anisotropic in structure, a linearly polarized wave becomes elliptically polarized and its polarization azimuth rotates after passing through the nanostructure. Changes in the polarization states in the transmitted wave compared with the incident wave are defined by polarization azimuth rotation φ and ellipticity angle χ. Positive values of φ and χ correspond to the clockwise rotation of the polarization azimuth and a right-handed polarization ellipse, respectively, as observed against the propagation direction. The scanning electron micrograph shows a single meta-atom along with the dimensions. (b) The spectra of the hybrid metasurface. T corresponds to transmission; R corresponds to reflection; and A corresponds to absorption. (c) Spectral dependence of the polarization changes by the nanostructure in terms of polarization azimuth rotation φ and ellipticity angle χ in the wavelength range of 700–950 nm (circles show the experimental data points, solid curves are simulation results).
Figure 2Nonlinear tuning over polarization effects of the plasmonic metasurfaces. (a) Green light (532 nm) is used as a control beam to switch the polarization effects of the nanostructure. The signal and control beams were combined together by a dichroic mirror. A long pass filter (F) with cut-on wavelength at 550 nm was applied to isolate the green light in the transmitted light. (b) Under irradiation of green light, each ethyl-red molecule isomerizes from the trans state to the cis state and then recovers to the original trans state through thermally relaxation in dark. (c) Under green light (4 mW) excitation, both φ and χ (solid dots: measured data, dashed lines: simulation results) undergo an obvious blue shift compared with the results without the control beam (circles: measured data, solid lines: simulation results). (d) Measured nonlinear changes in the polarization parameters for various control light powers relative to results without the control beam. Vertical dashed lines indicate the wavelengths at which the power dependences of Δφ and Δχ are shown in (e).
Figure 3Speed characterization of the nonlinear polarization effect. Dynamic response of the nonlinear polarization effects under green light modulations. The chopped green light (shown by green curves) acts as the trigger reference for an oscilloscope. The red curves show the temporal response of the transmitted signal light, along with the double-exponential fitting curves. The horizontal dashed lines present the background level of the signal light before green light excitation.