Maximum Electro-Momentum Coupling in Piezoelectric Metamaterial Scatterers
Jeong-Ho Lee, Zhizhou Zhang, Grace X. Gu

TL;DR
This paper establishes theoretical bounds on electro-momentum coupling in piezoelectric metamaterial scatterers, demonstrating their potential for tunable, bianisotropic wave scattering and cloaking applications.
Contribution
It derives the first tight bounds on electro-momentum coupling effects in passive piezoelectric scatterers, linking bianisotropy to tunable scattering performance.
Findings
Electro-momentum coupling can match non-bianisotropic scattering terms.
Bianisotropic scattering performance is significant even with small Willis coupling.
Electro-momentum coupling enables tunable scattering and cloaking in piezoelectric metamaterials.
Abstract
Analogous to electromagnetic bianisotropy, engineered piezoelectric metamaterials can possess electro-momentum coupling between the macroscopic momentum and electric stimuli. This indicates the applicability of piezoelectric metamaterials for wave scattering with an extra design degree of freedom, in the same way as acoustic materials with Willis coupling between the macroscopic momentum and strain. To fully utilize this novel bianisotropy, we derive for the first time tight theoretical bounds on the effect of electro-momentum coupling on scatterers based on energy conservation and combining two acoustic and electromagnetic polarizability tensors to analyze passive bianisotropic scatterers under both acoustic and electromagnetic waves. Our derived bounds are verified by comparing them with analytical scattering solutions. Results show that the bianisotropic scattering performance can be…
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