2020
DOI: 10.1364/prj.404743
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Engineering a light–matter strong coupling regime in perovskite-based plasmonic metasurface: quasi-bound state in the continuum and exceptional points

Abstract: We present theoretically the formation of exciton-photon polaritons and excitonsurface plasmon polaritons in perovskite-based subwavelength lattice on metallic plane. It is showed that the later polaritons will be achieved as the perovskite layer is ultra thin (<50nm) while the co-existence of both polaritons will dominate as the thickness of the perovskite metasurface approaches wavelength-scale. In the two cases, the lower polaritonic branches consist of dark and bright modes corresponding to infinite and fi… Show more

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Cited by 51 publications
(36 citation statements)
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References 81 publications
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“…Strong radiation-matter coupling between a QW excitonic transition and such photonic modes leads to BIC polaritons. [28][29][30] The actual sample used in this work is a waveguide comprising 12 (nominally, 20 nm thick) GaAs quantum wells separated by (20 nm thick) Al 0.4 Ga 0.6 As barriers, and sitting on top of a 500 nm thick Al 0.8 Ga 0.2 As cladding (see Fig. 1).…”
Section: Theoretical and Experimental Resultsmentioning
confidence: 99%
“…Strong radiation-matter coupling between a QW excitonic transition and such photonic modes leads to BIC polaritons. [28][29][30] The actual sample used in this work is a waveguide comprising 12 (nominally, 20 nm thick) GaAs quantum wells separated by (20 nm thick) Al 0.4 Ga 0.6 As barriers, and sitting on top of a 500 nm thick Al 0.8 Ga 0.2 As cladding (see Fig. 1).…”
Section: Theoretical and Experimental Resultsmentioning
confidence: 99%
“…However, due to their hybrid exciton-photon nature, the quality factor of pol-BICs is balanced between the nonradiative losses of the excitonic component and the one from the photonic BIC. [43] They are thus quasi-BICs, whose quality factor is limited by non-radiative losses. Moreover, the C 4 symmetry of the square-lattice imposes that the quality factor of photonic BICs decreases as 2 k x at oblique angles.…”
Section: Quality Factor Enhancement At Pol-bicsmentioning
confidence: 99%
“…While most of the milestones of polaritonic physics have been achieved with excitonic materials operating at cryogenic temperatures (≈10 K), recent progress in materials science has promoted many polaritonic demonstrations at room temperature with a wide variety of high bandgap semiconductors, ranging from GaN, [24,25] ZnO, [26] to organic semiconductors, [27,28] and transition metal dichalcogenide monolayers, [29,30] as well as perovskite materials. [31][32][33][34][35][36][37][38][39][40][41] Very recently, the strong coupling regime between photonic BICs and excitonic resonances has been theoretically suggested, [42][43][44][45] with two experimental demonstrations. [46,47] The result of such a coupling is the formation of polariton-BICs (pol-BICs): hybrid excitations that are completely decoupled from the radiative continuum.…”
Section: Introductionmentioning
confidence: 99%
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“…We investigated the role of the superstrate for the nanodisk array with a period p = 425 nm in sustaining both LSPRs and SLRs. n sup is varied from 1.0 (air) to 2.4 (TiO 2 [32] or perovskite film [33,34]). This cor- responds to a variation in the index contrast, defined by ∆n = n sup − n sub , from -0.46 to 0.94.…”
mentioning
confidence: 99%