Strong interlayer coupling and chiral flat-band cascades in twisted bilayer gratings.

Choi, Daegwang; Lee, Soon-Jae; Cho, Seung-Woon; Bark, Chan Bin; Pak, Seik; Shin, Dong-Jin; Park, Moon Jip; Gong, Su-Hyun · Sci Adv · 2026

basic_science · Level V

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Abstract

From atomic crystals to macroscopic material structures, twisted bilayer systems have emerged as a promising route to control wave phenomena. In few-layer van der Waals materials, however, the intrinsically weak interlayer coupling typically demands precise control of small twist angles to reach magic-angle conditions. Here, we show that twisted one-dimensional photonic crystal bilayers can overcome this limitation by accessing a regime of strong interlayer coupling-comparable to intralayer coupling. This strong coupling enables ultrawide flat-band formation even at large twist angles. We experimentally realize this regime by stacking tungsten disulfide gratings using a two-step lithography method, resulting in ultrawide chiral flat-band cascades in magic-angle twisted bilayer gratings. Our work not only provides a platform for designing photonic applications with a tunable photonic band but also explores a previously unidentified regime of physics that is unattainable in conventional solid-state-based moiré systems.