Computational inverse design of acoustoplasmonic metasurfaces
Abstract
Optical and acoustic metasurfaces are two-dimensional arrays of subwavelength elements that locally modulate or phase shift incident waves. Acoustoplasmonic metasurfaces combine the physics of light and sound, producing acoustic wavefronts in response to optical stimuli. Herein, we present a computational inverse acoustoplasmonic metasurface design algorithm for desired optically generated acoustic wave fields. We consider gold nanoparticles producing spherical acoustic waves in water, and the resulting acoustic wave propagation along the plane containing the nanoparticle array. We demonstrate how our algorithm can be used to design metasurfaces that can be used to achieve complex acoustic wave fields. This includes the design of a single metasurface that produces acoustic wave fields mimicking two different Morse code patterns upon stimulation with two orthogonal polarization states of light. This work provides a tool for the design of complex optically generated acoustic wavefronts, enabling functionality beyond what would be achievable with off-optical-resonance optoacoustic excitation.
Article Details
Journal Info
Applied Physics Letters
American Institute of Physics
Authors (3)
Julia E. Holland
Department of Mechanical & Aerospace Engineering, UC San Diego 1 , La Jolla, California 92093-0021,
Nicholas Boechler
Lisa V. Poulikakos
Department of Mechanical & Aerospace Engineering, UC San Diego 1 , La Jolla, California 92093-0021,