Excitons probe intrinsic flat band Mottness in a van der Waals heterostructure
Xinyue Huang, Xintong Tan, Haowei Chen, Yingzhou Huang, Yushen Zhou, Yuchen Gao, Zhijie Ma, Chengxin Xiao, Kenji Watanabe, Takashi Taniguchi, Jianpeng Liu, Zuxin Chen, Youguo Shi, Wang Yao, Yu Ye
Abstract
Excitons provide a sensitive optical probe of electronic correlations in nearby two-dimensional materials, yet their coupling to intrinsic flat-band Mott systems remains largely unexplored. Here we combine gate-tunable optical spectroscopy with first-principles calculations to study monolayer WSe2 in direct contact with the van der Waals Mott insulator Nb3Cl8. The gate evolution of WSe2 excitonic resonances reveals signatures of a correlation-reconstructed Mott gap in Nb3Cl8 that is absent from the single-particle band picture. In the electron-doped regime, the WSe2 2s Rydberg exciton undergoes a multistage evolution and develops into interlayer attractive and repulsive polaron branches, showing that a Rydberg exciton can be dressed by strongly correlated flat-band electrons in an adjacent Mott layer. Under an out-of-plane magnetic field, spin-polarized Nb3Cl8 states further induce valley-selective exciton coupling, producing a strongly enhanced circular polarization of the WSe2 exciton emission. These results extend exciton-based sensing and exciton-polaron physics to intrinsic flat-band Mott materials, providing an optical route to probe and engineer correlation-driven interfacial quasiparticles.
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