4.6 Article

Progress and perspectives on phononic crystals

期刊

JOURNAL OF APPLIED PHYSICS
卷 129, 期 16, 页码 -

出版社

AIP Publishing
DOI: 10.1063/5.0042337

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资金

  1. European Union's Horizon 2020 research and innovation programme [101003436]
  2. Foundation for Polish Science [POIR.04.04.00-00-5D1B/18]
  3. Polish National Science Centre [UMO-2018/31/D/ST3/03882]

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Phononic crystals play a crucial role in controlling the transport of sound and heat, with applications ranging from vibrational isolation to fast signal processing and device miniaturization. Current research covers a wide range of solutions from low-frequency to high-frequency phononic crystals, including sound insulators, seismic shields, and ultrasonic imaging devices.
Phononic crystals (PnCs) control the transport of sound and heat similar to the control of electric currents by semiconductors and metals or light by photonic crystals. Basic and applied research on PnCs spans the entire phononic spectrum, from seismic waves and audible sound to gigahertz phononics for telecommunications and thermal transport in the terahertz range. Here, we review the progress and applications of PnCs across their spectrum, and we offer some perspectives in view of the growing demand for vibrational isolation, fast signal processing, and miniaturization of devices. Current research on macroscopic low-frequency PnCs offers complete solutions from design and optimization to construction and characterization, e.g., sound insulators, seismic shields, and ultrasonic imaging devices. Hypersonic PnCs made of novel low-dimensional nanomaterials can be used to develop smaller microelectromechanical systems and faster wireless networks. The operational frequency, compactness, and efficiency of wireless communications can also increase using principles of optomechanics. In the terahertz range, PnCs can be used for efficient heat removal from electronic devices and for novel thermoelectrics. Finally, the introduction of topology in condensed matter physics has provided revolutionary designs of macroscopic sub-gigahertz PnCs, which can now be transferred to the gigahertz range with advanced nanofabrication techniques and momentum-resolved spectroscopy of acoustic phonons.

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