宽带
水下
镜面反射
声学
光学
波前
声纳
散射
气泡
物理
雷达截面
还原(数学)
反射(计算机编程)
波束宽度
水声学
雷达
参数统计
编码(社会科学)
材料科学
计算机科学
极化(电化学)
相(物质)
海洋哺乳动物与声纳
干扰(通信)
声波
反向散射(电子邮件)
传感器
谐振器
解码方法
作者
Jia-Wang Zhang,Sheng-Dong Zhao,Hao-Wen Dong,Yan Gu,Yaozong Pan,Zeyu Si,Chuanzeng Zhang,В. А. Бабешко
摘要
In underwater acoustics, reducing target detectability typically requires tailoring material thickness to specific frequencies, posing a fundamental constraint for broadband stealth. Here, we break this thickness-frequency dependency by introducing a 1-bit coding metasurface (CM) that achieves effective acoustic scattering suppression from 10 to 35 kHz with minimal sensitivity to cavity geometry. The CM comprises two deep-subwavelength units exhibiting a 180° reflection-phase difference: a metal-backed "0" unit that mimics a rigid boundary, and a "1" unit that encapsulates a stabilized air bubble with a polymer membrane to approximate a pressure-release surface. Through optimized spatial coding, the CM redirects incident plane waves into diffuse scattering patterns, substantially attenuating specular reflection. Both simulations and experiments confirm greater than 10 dB radar-cross section reduction over a broad angular span (up to 45°). Crucially, the reflection phase remains stable against variations in air-cavity thickness across the operational band, demonstrating a thickness-decoupled design paradigm. This work provides a robust, fabrication-friendly strategy for broadband underwater acoustic signature control, with potential applications in sonar camouflage and wavefront manipulation.
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