Ultrasonic metamaterial at MHz frequencies using microstructured glass
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Abstract Acoustic metamaterials enhance traditional material properties, providing new opportunities to shape sound fields in applications ranging from biomedical imaging, clinical therapy to non-destructive testing. However, at the MHz frequency ranges, only a few metamaterial architectures exist. They are often highly attenuating or difficult to manufacture, and generally provide limited control. Here, we introduce a MHz-frequency ultrasonic metamaterial based on laser-engraved glass. By structuring meta-voxels with different engraving patterns, we define an anisotropic metamaterial exhibiting local variations in the sound speed of up to 20% compared to unstructured glass, and losses 100× lower than in comparable 3D printed metamaterials.We use this metamaterial to define a library of standard elements that can be modularly combined to shape complex-patterned ultrasonic fields. Our experiments are supported by a theoretical model, which provides additional insights into the microstructural origin of the metamaterial behavior and opens the door to designing tailored ultrasound fields and responses. Technical Info Dataset for Figures 1 to 4 (main text) and for results of T-matrix simulation



