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June 3, 2026Applied Physics Letters0 citations

Cryogenic enhancement of phononic four-wave mixing in AlScN/SiC

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ABA. K. BeheraBSB. SmithXDX. Du

Key Points

  • This research aims to explore the impact of temperature on phononic four-wave mixing in an AlScN/SiC heterostructure.
  • Investigated surface acoustic waves in Al0.58Sc0.42N/4H-SiC at room (295 K) and cryogenic (4 K) temperatures.
  • Performed continuous-wave four-wave mixing measurements to assess modal nonlinear coefficients across temperatures.
  • Analyzed distinct Rayleigh and Sezawa modes to compare their nonlinear behavior.
  • At 4 K, the extracted modal nonlinear coefficient is significantly enhanced compared to 295 K.
  • Rayleigh mode exhibits a modal nonlinearity approximately two orders of magnitude larger than the Sezawa mode across both temperatures.
  • Demonstrated that temperature, mode confinement, and strain localization strongly influence four-wave mixing performance.

Abstract

Surface acoustic wave platforms based on piezoelectric thin-film heterostructures provide sub-wavelength acoustic confinement, making them attractive for compact nonlinear phononic systems with applications including frequency conversion, parametric interactions, and nonlinear signal processing. Here, we investigate guided surface acoustic wave phononic four-wave mixing at gigahertz frequencies in an aluminum scandium nitride (Al0.58Sc0.42N)/4H–silicon carbide heterostructure operated at both room temperature (295 K) and cryogenic temperature (4 K). The 500-nm thick aluminum scandium nitride film supports guided Rayleigh and Sezawa modes with distinct displacement and strain energy density distributions, allowing a direct comparison of mode-dependent nonlinear behavior within the same device. Continuous-wave four-wave mixing measurements reveal an enhancement in the extracted modal nonlinear coefficient at 4 K relative to 295 K for both modes. In addition, the Rayleigh mode exhibits a modal nonlinearity approximately two orders of magnitude larger than that of the Sezawa mode across both temperature regimes. These results demonstrate that phononic four-wave mixing is strongly influenced by temperature, mode confinement, and strain localization while establishing aluminum scandium nitride on silicon carbide heterostructures as a promising platform for engineering enhanced nonlinear phononic interactions for future classical and quantum acoustic on-chip signal processing systems.

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Cite This Study

Behera et al. (2026) studied this question.

synapsesocial.com/papers/6a1fc756dee9eb8c0dce83fbhttps://doi.org/10.1063/5.0324053
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Monolithic AlScN/SiC phononic waveguides for scalable acoustoelectric and quantum devices2025
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  4. 4Toward efficient GHz frequency acoustic wave injection in <b> <i>μ</i> </b> m-scale unsuspended geometries: A case study in ScAlN on silicon-on-sapphire2026
  5. 5Rayleigh Wave Suppression in Al0.6Sc0.4N-on-SiC Resonators2024