Detailed Information

Cited 0 time in webofscience Cited 0 time in scopus
Metadata Downloads

An analytical model of a piezoelectric-defect-introduced phononic crystal with partial debondingopen access

Authors
Baek, JuheeJang, JinhyeokHwang, DohyeonBae, HanseongJo, Soo-HoYoon, Heonjun
Issue Date
Jan-2026
Publisher
IOP Publishing Ltd
Keywords
Phononic crystal; piezoelectric defect; energy harvesting; analytical model; partial debonding
Citation
Journal of Physics D: Applied Physics, v.59, no.3
Indexed
SCIE
SCOPUS
Journal Title
Journal of Physics D: Applied Physics
Volume
59
Number
3
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/63565
DOI
10.1088/1361-6463/ae36bb
ISSN
0022-3727
1361-6463
Abstract
Piezoelectric energy harvesting (PEH) systems based on defect-introduced phononic crystals (PnCs) have exhibited enhanced power output; however, they are vulnerable to long-term degradation due to interfacial debonding. The present work proposes an initial analytical framework for a one-dimensional PnC embedding a defect that possesses bimorph PEH devices with symmetric partial debonding at its center. The analytical model under consideration features rigorous decomposition of wave-propagation behaviors across bonded/debonded, electroelastically coupled/decoupled regions. A transfer matrix with electroelastic coupling and partial debonding is newly derived, integrating Newton's laws, linear piezoelectric constitutive relations, and Gauss's law under harmonic excitation. Band-structure analysis via the transfer-matrix method quantifies defect-band frequency shifts and defect-mode shape changes induced by varying debonding ratios, while the S-parameter method predicts the variations of the frequency-response curves for the harvested current, voltage, and optimal electric power. The analytical predictions are validated against COMSOL Multiphysics, demonstrating excellent agreement over debonding ratios up to 80%. Notably, the results reveal a pronounced and nonlinear degradation of defect-band frequencies and PEH performance beyond an empirically identified debonding level of approximately 40%. The proposed analytical framework enables rapid and cost-effective assessment of debonding effects and provides useful insights into the design and material selection of more robust PEH devices.
Files in This Item
There are no files associated with this item.
Appears in
Collections
College of Engineering > Department of Mechanical, Robotics and Energy Engineering > 1. Journal Articles

qrcode

Items in ScholarWorks are protected by copyright, with all rights reserved, unless otherwise indicated.

Related Researcher

Researcher Jo, Soo Ho photo

Jo, Soo Ho
College of Engineering (Department of Mechanical, Robotics and Energy Engineering)
Read more

Altmetrics

Total Views & Downloads

BROWSE