TY - JOUR
T1 - Design paradigm for strong-lightweight perfect microwave absorbers
T2 - The case of 3D printed gyroid shellular SiOC-based metamaterials
AU - Yao, Li
AU - Yang, Wenqiang
AU - Zhou, Shixiang
AU - Mei, Hui
AU - Cheng, Laifei
AU - Zhang, Litong
N1 - Publisher Copyright:
© 2022 Elsevier Ltd
PY - 2022/8/30
Y1 - 2022/8/30
N2 - Research on microwave absorbing (MA) metamaterials with multifunctional coupling designs is a burgeoning topic. Reported here is a design paradigm for architecting mechanically robust all-dielectric MA metamaterials reaching perfect electromagnetic wave absorption. First, we generalized rules of optimal permittivities for nonmagnetic materials reaching theoretically ultimate reflection loss (RL) smaller than −150 dB, and proposed a facile criterion for evaluating MA performance based on the offset of dielectric Cole-Cole curves from theoretical optimal values. Subsequently, electromagnetic tunable polymer-derived SiOC ceramics with the highest reported printing accuracy of 20 μm were developed as metamaterials matrix, and the strong-lightweight gyroid shell-cellular (shellular) is introduced to optimize the MA performance while balancing mechanical properties. Finally, as-fabricated gyroid shellular MA metamaterials exhibit an unmatched MA performance coupled with unparalleled mechanical properties: the minimum RL achieves the ceiling value of −70.3 dB, the effective absorption bandwidth spans the whole X-band, and the specific compressive strength is as high as 63.0 MPa/(g/cm3) at 0.606 g/cm3 ultralow density. Besides, the theoretical framework was well-established for guiding structural optimization and practical manufacturing of inhomogeneous metamaterials. This research advanced an unambiguous theoretical direction for the development of structure-function integrated MA metamaterials through the synergistic interaction among theory, computation, and experiment.
AB - Research on microwave absorbing (MA) metamaterials with multifunctional coupling designs is a burgeoning topic. Reported here is a design paradigm for architecting mechanically robust all-dielectric MA metamaterials reaching perfect electromagnetic wave absorption. First, we generalized rules of optimal permittivities for nonmagnetic materials reaching theoretically ultimate reflection loss (RL) smaller than −150 dB, and proposed a facile criterion for evaluating MA performance based on the offset of dielectric Cole-Cole curves from theoretical optimal values. Subsequently, electromagnetic tunable polymer-derived SiOC ceramics with the highest reported printing accuracy of 20 μm were developed as metamaterials matrix, and the strong-lightweight gyroid shell-cellular (shellular) is introduced to optimize the MA performance while balancing mechanical properties. Finally, as-fabricated gyroid shellular MA metamaterials exhibit an unmatched MA performance coupled with unparalleled mechanical properties: the minimum RL achieves the ceiling value of −70.3 dB, the effective absorption bandwidth spans the whole X-band, and the specific compressive strength is as high as 63.0 MPa/(g/cm3) at 0.606 g/cm3 ultralow density. Besides, the theoretical framework was well-established for guiding structural optimization and practical manufacturing of inhomogeneous metamaterials. This research advanced an unambiguous theoretical direction for the development of structure-function integrated MA metamaterials through the synergistic interaction among theory, computation, and experiment.
KW - All-dielectric metamaterials
KW - Gyroid shellular structure
KW - Optimal complex permittivity
KW - PDCs-SiOC
KW - Perfect microwave absorption
UR - http://www.scopus.com/inward/record.url?scp=85132412493&partnerID=8YFLogxK
U2 - 10.1016/j.carbon.2022.06.004
DO - 10.1016/j.carbon.2022.06.004
M3 - 文章
AN - SCOPUS:85132412493
SN - 0008-6223
VL - 196
SP - 961
EP - 971
JO - Carbon
JF - Carbon
ER -