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High-Q localized states in finite arrays of subwavelength resonators

Published 23 Nov 2020 in physics.optics and quant-ph | (2011.11791v2)

Abstract: We introduce a novel physical mechanism for achieving giant quality factors (QQ-factors) in finite-length periodic arrays of subwavelength optical resonators. The underlying physics is based on interference between the band-edge mode and another standing mode in the array, and the formation of spatially localized states with dramatically suppressed radiative losses. We demonstrate this concept for an array of NN dipoles with simultaneous cancellation of multipoles up to NN-th order and the QQ factor growing as QN<sup>αQ \propto N<sup>{\alpha}, where α6.88\alpha \gtrsim 6.88. Based on this finding, we propose a realistic array of Mie-resonant nanoparticles (N29N \lesssim 29) with a dramatic enhancement of the Purcell factor (up to \sim 3400) achieved by tuning of the array parameters.

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