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February 8, 20260 citationsOpen Access

Lattice-induced sound trapping in biperiodic metasurfaces of acoustic resonators

NUNikita UstimenkoAEAndrey B. EvlyukhinVKVicky Kyrimi

Key Points

  • The aim is to explore how lattice interactions can create accidental acoustic bound states in metasurfaces of resonators.
  • Investigated multipole-interference mechanism for acoustic BICs using acoustic resonators.
  • Expanded pressure field as a series of scalar zonal spherical multipoles.
  • Formulated analytical conditions for eigenmodes to become BICs.
  • Applied T-matrix method for numerical investigation of BIC resonances in various structures.
  • Established the conditions for forming acoustic BICs at the Γ point in biperiodic metasurfaces.
  • Found that specific parity of multipoles leads to axisymmetric BIC formations via destructive interference.
  • Demonstrated transformation of BICs into high-Q quasi-BIC regimes under plane wave excitation.

Abstract

A referential example of a physical system that supports bound states in the continuum (BICs) with an infinite quality factor (𝑄 factor) is a metasurface of discrete scatterers (resonators), whose response can be significantly modified by exploiting lattice interactions. In this work, we explore the multipole-interference mechanism for realizing accidental acoustic BICs (trapped modes) at Γ point (in-plane Bloch wave vector 𝐤∥=𝟎) of biperiodic metasurfaces of acoustic resonators with one resonator per unit cell. To do so, we expand the pressure field from the metasurface into a series of scalar zonal (𝑚=0) spherical multipoles, carried by a normally incident plane wave, and formulate analytical conditions on the resonator multipole moments under which an eigenmode becomes a BIC. The conditions enable us to determine the lattice constant and frequency values that facilitate the formation of an axisymmetric BIC with a specific parity, resulting from destructive interference between zonal multipoles of the same parity, despite each moment radiating individually. By employing the T-matrix method for acoustic metasurfaces, we numerically investigate the BIC resonance in various structures, including finite arrays, and also the transformation of such resonances into high-𝑄 quasi-BIC regimes, which can be excited by a plane wave at normal incidence.

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Cite This Study

Ustimenko et al. (2026) studied this question.

synapsesocial.com/papers/698827a20fc35cd7a884674fhttps://doi.org/10.5445/ir/1000190272
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