AI Article Synopsis

  • Suspended piezoelectric thin films are crucial for high-frequency filtering in telecommunications, needing reduced thickness for higher resonance frequencies.
  • The research combines the robust mechanical and electrical properties of graphene electrodes with the strong piezoelectric effects of BaTiO (BTO) to create ultrathin resonators.
  • The findings show that these devices can achieve mechanical resonance and reconfigure by switching ferroelectric states through a DC bias, vibrating at an impressive frequency of 233 GHz.

Article Abstract

Suspended piezoelectric thin films are key elements enabling high-frequency filtering in telecommunication devices. To meet the requirements of next-generation electronics, it is essential to reduce device thickness for reaching higher resonance frequencies. Here, the high-quality mechanical and electrical properties of graphene electrodes are combined with the strong piezoelectric performance of the free-standing complex oxide, BaTiO (BTO), to create ultrathin piezoelectric resonators. It is demonstrated that the device can be brought into mechanical resonance by piezoelectric actuation. By sweeping the DC bias voltage on the top graphene electrode, the BTO membrane is switched between the two poled ferroelectric states. Remarkably, ferroelectric hysteresis is also observed in the resonance frequency, magnitude and Q-factor of the first membrane mode. In the bulk acoustic mode, the device vibrates at 233 GHz. This work demonstrates the potential of combining van der Waals materials with complex oxides for next-generation electronics, which not only opens up opportunities for increasing filter frequencies, but also enables reconfiguration by poling, via ferroelectric memory effect.

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Source
http://dx.doi.org/10.1002/adma.202204630DOI Listing

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