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◆ Light Science & Applications2026-02-06· Plasmon

Plasmonic nanocavity-enabled universal detection of layer-breathing vibrations in two-dimensional materials

Heng Wu, Miao‐Ling Lin, Sen Yan, L. Y. Chen, Zhong-Jie Wang, Yi-Fei Zhang, Ti-Ying Zhu, Zheng-Yu Su, Jun Wang, Xue‐Lu Liu, Zhongming Wei, Yan-Meng Shi, Xiang Wang, Bin Ren, Pingheng Tan

原始摘要(英文原文)· Original abstract
Conventional Raman spectroscopy faces inherent limitations in detecting interlayer layer-breathing (LB) vibrations with inherently weak electron-phonon coupling or Raman inactivity in two-dimensional materials, hindering insights into interfacial coupling and stacking dynamics. Here, we demonstrate a universal plasmon-enhanced Raman spectroscopy strategy using gold or silver nanocavities to strongly enhance and detect LB modes in multilayer graphene, hBN, and their van der Waals heterostructures. Plasmonic nanocavities even modify the linear and circular polarization selection rules of the LB vibrations. By developing an electric-field-modulated interlayer bond polarizability model, we quantitatively explain the observed intensity profiles and reveal the synergistic roles of localized plasmonic field enhancement and interfacial polarizability modulation. This model successfully describes the behavior of plasmon-enhanced LB vibrations across different material systems and nanocavity geometries. This work not only overcomes traditional detection barriers but also provides a quantitative framework for probing interlayer interactions, offering a versatile platform for investigating hidden interfacial phonons and advancing the characterization of layered quantum materials.
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Plasmonic nanocavity-enabled universal detection of layer-breathing vibrations in two-dimensional materials — 科研速览 Science Skim