Spiral structures are widely recurrent in nature to serve different purposes, including the spatial mapping of acoustic frequencies in the mammalian cochlea-a feature referred to as tonotopy. Motivated by this fundamental characteristic, we explore the elastodynamics of a three-dimensional seashell like structure with frequency-selective capabilities and, in addition, a polarization-dependent response, a feature rarely found in nature. We experimentally demonstrate how these properties can be exploited to discriminate between out-of-plane and in-plane waves, while producing a discrete spectrum that displays tonotopic behaviour. The polarization capabilities are a consequence of the realization of a tonotopic response in the spiral plane and perpendicular to it. Results can be of interest for the design of low-power, low-latency smart sensors for structural health monitoring and non destructive testing, where discrimination between frequency and polarization is usually accomplished through digital signal processing.
Experimental demonstration of a three-dimensional bioinspired tonotopic metasensor / Liu, Yuxuan; Zhang, Han; Riva, Emanuele; Pugno, Nicola M.; Gliozzi, Antonio S.; Bosia, Federico; Tortello, Mauro. - In: JOURNAL OF THE ROYAL SOCIETY INTERFACE. - ISSN 1742-5662. - ELETTRONICO. - 23:235(2026), pp. 1-14. [10.1098/rsif.2025.0771]
Experimental demonstration of a three-dimensional bioinspired tonotopic metasensor
Liu, Yuxuan;Zhang, Han;Riva, Emanuele;Gliozzi, Antonio S.;Bosia, Federico;Tortello, Mauro
2026
Abstract
Spiral structures are widely recurrent in nature to serve different purposes, including the spatial mapping of acoustic frequencies in the mammalian cochlea-a feature referred to as tonotopy. Motivated by this fundamental characteristic, we explore the elastodynamics of a three-dimensional seashell like structure with frequency-selective capabilities and, in addition, a polarization-dependent response, a feature rarely found in nature. We experimentally demonstrate how these properties can be exploited to discriminate between out-of-plane and in-plane waves, while producing a discrete spectrum that displays tonotopic behaviour. The polarization capabilities are a consequence of the realization of a tonotopic response in the spiral plane and perpendicular to it. Results can be of interest for the design of low-power, low-latency smart sensors for structural health monitoring and non destructive testing, where discrimination between frequency and polarization is usually accomplished through digital signal processing.| File | Dimensione | Formato | |
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https://hdl.handle.net/11583/3009499
