多路复用
超材料
稳健性(进化)
传输(电信)
物理
计算机科学
频道(广播)
误码率
光通信
电子工程
光学
声音传输等级
角动量
声学
噪音(视频)
宽带
光谱效率
轨道角动量复用
调制(音乐)
解调
通信系统
光电子学
电信
多输入多输出
信道容量
字错误率
带宽(计算)
拓扑(电路)
作者
Johan Christensen,Kai Wu,Jingjing Liu,Bin Liang,jian chun Cheng,Hao Xiang Li,Xufeng Zhu
摘要
Direct transmission of information-carrying sound waves across different states of matter holds significant implications for diverse disciplines. However, existing natural and artificial materials can modulate only one or a few dimensions of cross-media sound waves, imposing inherent bottlenecks on transmission rate and information density. Here, we propose a high-dimensional multiplexed (HDM) metamaterial capable of modulating all dimensions of cross-water-air sound waves including amplitude, phase, frequency, and orbital angular momentum in a passive, compact and efficient way. Thanks to this high-dimensional characteristic, the monolayered HDM metamaterial with subwavelength thickness enables simultaneously relaying and demodulating the spatial-spectral multiplexed signals from one medium to another, which significantly enhances channel capacity and spectral efficiency. We experimentally demonstrate an example of cross-water-air all-sound communication with the HDM metamaterial serving as a passive meta-repeater by transmitting a complex image encoded in both spatial and spectral domains through the metamaterial-based water-air communication link, showcasing real-time, high-speed, and postprocessing-free communication with a bit error rate near 1/10 of the forward error correction limit and strong robustness against background noise and fluctuating surface. This HDM metamaterial-based technique opens a new paradigm for sound wave control in complicated cross-media systems, with far-reaching implications in the Internet of Everything and beyond.
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