AI Article Synopsis

  • Gallium nitride (GaN) is a promising compound semiconductor with unique properties that enable innovative applications, particularly in the development of acoustic tweezers.
  • This study showcases a thin film GaN-based acoustic tweezer (GaNAT) that uses surface acoustic waves (SAWs) to effectively pattern and manipulate microparticles, despite some limitations in piezoelectric performance compared to traditional devices.
  • The research confirms the viability of thin film GaN for creating high-power acoustic tweezers, suggesting potential for integration with electronics, which could lead to a range of new microsystem applications.

Article Abstract

Gallium nitride (GaN) is a compound semiconductor which shows advantages in new functionalities and applications due to its piezoelectric, optoelectronic, and piezo-resistive properties. This study develops a thin film GaN-based acoustic tweezer (GaNAT) using surface acoustic waves (SAWs) and demonstrates its acoustofluidic ability to pattern and manipulate microparticles. Although the piezoelectric performance of the GaNAT is compromised compared with conventional lithium niobate-based SAW devices, the inherited properties of GaN allow higher input powers and superior thermal stability. This study shows for the first time that thin film GaN is suitable for the fabrication of the acoustofluidic devices to manipulate microparticles with excellent performance. Numerical modelling of the acoustic pressure fields and the trajectories of mixtures of microparticles driven by the GaNAT was performed and the results were verified from the experimental studies using samples of polystyrene microspheres. The work has proved the robustness of thin film GaN as a candidate material to develop high-power acoustic tweezers, with the potential of monolithical integration with electronics to offer diverse microsystem applications.

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Source
http://dx.doi.org/10.1016/j.ultras.2020.106202DOI Listing

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