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Uncovering Maximum Chirality in Resonant Nanostructures

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Chen, Weijin
Wang, Zhenyu
Gorkunov, Maxim V.
Qin, Jiazheng
Wang, Ruize
Wang, Chaowei
Wu, Dong
Chu, Jiaru
Wang, Xuehua
Kivshar, Yuri

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Chiral nanostructures allow engineering of chiroptical responses; however, their design usually relies on empirical approaches and extensive numerical simulations. It remains unclear if a general strategy exists to enhance and maximize the intrinsic chirality of subwavelength photonic structures. Here, we suggest a microscopic theory and uncover the origin of strong chiral responses of resonant nanostructures. We reveal that the reactive helicity density is critically important for achieving maximum chirality at resonances. We demonstrate our general concept on the examples of planar photonic crystal slabs and metasurfaces, where out-of-plane mirror symmetry is broken by a bilayer design. Our findings provide a general recipe for designing photonic structures with maximum chirality, paving the way toward many applications, including chiral sensing, chiral emitters and detectors, and chiral quantum optics.

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Nano Letters

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