Frequency-Mode Study of Piezoelectric Devices for Non-Invasive Optical Activation
Keywords: impedance spectroscopy; interferometric instrumentation; piezo, optical effect; piezoelectric
Abstract
Piezoelectric materials are fundamental elements in modern science and technology due to their unique ability to convert mechanical and electrical energy bidirectionally. They are widely employed in sensors, actuators, and energy-harvesting systems. In this work, we investigate the behavior of commercial lead zirconate titanate (PZT) sensors under frequency-mode excitation using a combined approach of impedance spectroscopy and optical interferometry. The impedance spectra reveal distinct resonanceantiresonance features that strongly depend on geometry, while interferometric measurements capture dynamic strain fields through fringe displacement analysis. The strongest deformation occurs near the first kilohertz resonance, directly correlated with the impedance phase, enabling the extraction of an effective piezoelectric constant (~40 pC/N). Moving beyond the linear regime, laser-induced excitation demonstrates optically driven activation of piezoelectric modes, with a frequency-dependent response and nonlinear scaling with optical power, characteristic of coupled pyroelectricpiezoelectric effects. These findings introduce a frequency-mode approach that combines impedance spectroscopy and optical interferometry to simultaneously probe electrical and mechanical responses in a single setup, enabling non-contact, frequency-selective sensing without surface modification or complex optical alignment. Although focused on macroscale ceramic PZTs, the non-contact measurement and activation strategies presented here offer scalable tools for informing the design and analysis of piezoelectric behavior in micro- and nanoscale systems. Such frequency-resolved, optical-access approaches are particularly valuable in the development of next-generation nanosensors, MEMS/NEMS devices, and optoelectronic interfaces where direct electrical probing is challenging or invasive. © 2025 by the authors.
Más información
| Título según WOS: | ID WOS:001615283100001 Not found in local WOS DB |
| Título según SCOPUS: | Frequency-Mode Study of Piezoelectric Devices for Non-Invasive Optical Activation |
| Título de la Revista: | NANOMATERIALS |
| Volumen: | 15 |
| Número: | 21 |
| Editorial: | MDPI |
| Fecha de publicación: | 2025 |
| Idioma: | English |
| DOI: |
10.3390/nano15211650 |
| Notas: | ISI, SCOPUS |