TY - JOUR
T1 - Local-Resonance-Induced Dual-Band Topological Corner States of Flexural Waves in a Perforated Metaplate
AU - Fan, Lei
AU - Chen, Yafeng
AU - An, Shuowei
AU - Liu, Tuo
AU - Fan, Haiyan
AU - Zhu, Jie
AU - Su, Zhongqing
N1 - Funding Information:
This work is supported by the Fundamental Research Funds for the Central Universities (Grant No. 22120220237), the Research Grants Council of Hong Kong SAR (Grants No. AoE/P-502/20, No. 15200922, No. 15202820, and No. 15205219), the Hong Kong Scholars Program (Grant No. XJ2020004), the National Natural Science Foundation of China (Grant No. 1210020421), and the Natural Science Foundation of Hunan Province (Grant No. 2022JJ40026). Z.S. acknowledges the support from Hong Kong Innovation and Technology Commission via project “Smart Railway Technology and Applications” (Grant No. K-BBY1)
Publisher Copyright:
© 2023 American Physical Society.
PY - 2023/3
Y1 - 2023/3
N2 - Despite their proven effectiveness in localizing and steering subwavelength elastic waves, locally resonant elastic topological insulators (TIs) with surface-mounted or embedded resonators are often challenged because of their structural complexity and the difficulty in realizing multiple topological band gaps. Here we present a second-order elastic TI (SETI), made of a perforated metaplate with a series of etched C-shaped slots, to achieve dual-band topological corner states. The etched slots in the metaplate form a type of cantileverlike oscillator, the multimodal bending resonances of which couple with the flexural vibration modes of the metaplate, resulting in multiple locally resonant band gaps. Judiciously configuring these slots in a C4v-symmetric lattice enables topologically distinct metastructures and creates a SETI. We numerically and experimentally observe the dual-band corner states in two broad topological band gaps. Our platform for observing the topological effects in a perforated metaplate greatly simplifies the fabrication of metastructures for implementing locally resonant elastic TIs, benefiting applications of TIs at the subwavelength scale such as elastic wave trapping and energy amplification.
AB - Despite their proven effectiveness in localizing and steering subwavelength elastic waves, locally resonant elastic topological insulators (TIs) with surface-mounted or embedded resonators are often challenged because of their structural complexity and the difficulty in realizing multiple topological band gaps. Here we present a second-order elastic TI (SETI), made of a perforated metaplate with a series of etched C-shaped slots, to achieve dual-band topological corner states. The etched slots in the metaplate form a type of cantileverlike oscillator, the multimodal bending resonances of which couple with the flexural vibration modes of the metaplate, resulting in multiple locally resonant band gaps. Judiciously configuring these slots in a C4v-symmetric lattice enables topologically distinct metastructures and creates a SETI. We numerically and experimentally observe the dual-band corner states in two broad topological band gaps. Our platform for observing the topological effects in a perforated metaplate greatly simplifies the fabrication of metastructures for implementing locally resonant elastic TIs, benefiting applications of TIs at the subwavelength scale such as elastic wave trapping and energy amplification.
UR - http://www.scopus.com/inward/record.url?scp=85151320172&partnerID=8YFLogxK
U2 - 10.1103/PhysRevApplied.19.034065
DO - 10.1103/PhysRevApplied.19.034065
M3 - Journal article
AN - SCOPUS:85151320172
SN - 2331-7019
VL - 19
JO - Physical Review Applied
JF - Physical Review Applied
IS - 3
M1 - 034065
ER -