材料科学
超材料
光电子学
微波食品加热
超材料吸收剂
陶瓷
反射损耗
带宽(计算)
衰减
阻抗匹配
吸收(声学)
光学
可调谐超材料
宽带
多孔性
控制重构
反射(计算机编程)
谐振器
电磁辐射
微波应用
宽带
声学
雷达
收发机
无线电频率
超材料天线
电子工程
分裂环谐振器
热的
插入损耗
作者
Guanghui Feng,Shuo Wang,Amr Osman,G LI,Hanyang Yu,Xiyuan Yao,Jia Sun,Qian-gang Fu,Hui Li,Jian Lu
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2026-05-13
卷期号:12 (20)
标识
DOI:10.1126/sciadv.aed0172
摘要
Broadband-tunable electromagnetic wave absorption materials are critical for dynamic scenarios, such as those in wireless communication and radar systems. However, conventional absorbers are limited by narrow bandwidth and fixed postfabrication geometries. Herein, we propose a four-dimensional (4D)-printed pyramidal metamaterial comprising a hierarchically porous carbon–supported high-entropy ceramic and a shape memory elastomer. By synergizing macroscopic cavity resonances with microscopic defect-induced polarizations, the metamaterial delivers an absorption bandwidth of 14.16 gigahertz (≥90% absorption), representing a 98.88% enhancement over its bulk counterpart. In addition, it enables spatial reconfiguration via a moderate thermal stimulus (120°C), achieving tunable absorption across 5.24 to 18 gigahertz while maintaining reflection loss below −20 decibels (≥99% absorption). The base material’s adaptability to complicated configurations is demonstrated by helical, origami-inspired, and load-bearing architectures. This work paves the way for metamaterial absorbers with multiple configurations and shape reversibility, advancing their applications in multispectral and intelligent adaptive systems.
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