Science Advances

Gigahertz multimode vibrations in graphene and MoS 2 nanomechanical resonators at room temperature

2026-02-13

Probing and understanding ultrahigh-frequency/gigahertz (UHF/GHz) vibrations in atomic layer nanomechanical resonators holds strong promise for fundamental studies and technological applications, such as sensing, signal processing, and quantum engineering. However, accessing GHz flexural-mode resonances in such devices at room temperature has been challenging. Here, we demonstrate the first measurement of GHz flexural vibrations in graphene and molybdenum disulfide (MoS 2 ) resonators at room temperature, achieving multimode resonances ( f m , n ) up to ~1.09 GHz and quality factors ( Q m , n ) up to ~5400 in multilayer MoS 2 resonators, and f m , n up to ~1.03 GHz with high Q m , n ~4500 in few-layer graphene resonators. Both f s and Q s are the highest among reported atomic layer nanomechanical resonators at room temperature, yielding f m , n × Q m , n ~ 5 × 10 12 Hz. We also reveal a Q scaling law with higher modes, which favors detecting GHz resonances. This study will enable exploiting multiple modes in atomic layer resonators toward resonant sensing and transduction functions at UHF/GHz.

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DOI https://doi.org/10.1126/sciadv.ads5668