AI Article Synopsis

  • Phonon engineering at gigahertz frequencies supports applications like microwave acoustic filters and quantum transducers, while terahertz phonon engineering promises faster and higher bandwidth technologies.
  • Researchers demonstrated effective generation, detection, and manipulation of terahertz phonons using atomically thin materials, specifically few-layer graphene and monolayer WSe, within van der Waals heterostructures.
  • The study showcases high-quality terahertz phononic cavities and the ability of WSe embedded in hexagonal boron nitride to block terahertz phonon transmission, paving the way for advanced acoustic filters and thermal engineering techniques.

Article Abstract

Phonon engineering at gigahertz frequencies forms the foundation of microwave acoustic filters, acousto-optic modulators and quantum transducers. Terahertz phonon engineering could lead to acoustic filters and modulators at higher bandwidth and speed, as well as quantum circuits operating at higher temperatures. Despite their potential, methods for engineering terahertz phonons have been limited due to the challenges of achieving the required material control at subnanometre precision and efficient phonon coupling at terahertz frequencies. Here we demonstrate the efficient generation, detection and manipulation of terahertz phonons through precise integration of atomically thin layers in van der Waals heterostructures. We used few-layer graphene as an ultrabroadband phonon transducer that converts femtosecond near-infrared pulses to acoustic-phonon pulses with spectral content up to 3 THz. A monolayer WSe is used as a sensor. The high-fidelity readout was enabled by the exciton-phonon coupling and strong light-matter interactions. By combining these capabilities in a single heterostructure and detecting responses to incident mechanical waves, we performed terahertz phononic spectroscopy. Using this platform, we demonstrate high-Q terahertz phononic cavities and show that a WSe monolayer embedded in hexagonal boron nitride can efficiently block the transmission of terahertz phonons. By comparing our measurements to a nanomechanical model, we obtained the force constants at the heterointerfaces. Our results could enable terahertz phononic metamaterials for ultrabroadband acoustic filters and modulators and could open new routes for thermal engineering.

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Source
http://dx.doi.org/10.1038/s41586-024-07604-9DOI Listing

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