论文标题

使用低损失的Epsilon-Near-Zero零材料波导的五通道频划分多路复用

Five-channel frequency-division multiplexing using low-loss epsilon-near-zero metamaterial waveguide

论文作者

Hong, Binbin, Sun, Lei, Wang, Wanlin, Qiu, Yanbing, Feng, Naixing, Su, Dong, Somjit, Nutapong, Robertson, Ian, Wang, Guo Ping

论文摘要

迅速增长的全球数据使用量需要更有效的方法来利用稀缺的电磁频谱资源。最近的研究集中在毫米波频段(1-10 mm或30-300 GHz)中有效的多路复用技术的发展,这是由于未来无线网络的可用带宽有望。频划分多路复用仍然是最大程度地提高无线网络传输能力的最常用技术之一。基于低损失的Epsilon-near-near-Zero超材料波导的频率选择性隧道效应,我们在数值和实验上证明了在毫米波范围内的五通道频率划分多路复用和消失。我们表明,通过更改Epsilon-Near-near-Zero超材料波导拓扑,并通过在两个Epsilon-Near-Zero-Zero通道之间添加标准波导,该设备体系结构可提供极大的灵活性来操纵滤波器Q因子和不同通道的传输光谱。这种频段多路复用的策略可能铺平了一种有效分配未来通信网络的频谱的方式。

The rapidly growing global data usage has demanded more efficient ways to utilize the scarce electromagnetic spectrum resource. Recent research has focused on the development of efficient multiplexing techniques in the millimeter-wave band (1-10 mm, or 30-300 GHz) due to the promise of large available bandwidth for future wireless networks. Frequency-division multiplexing is still one of the most commonly-used techniques to maximize the transmission capacity of a wireless network. Based on the frequency-selective tunnelling effect of the low-loss epsilon-near-zero metamaterial waveguide, we numerically and experimentally demonstrate five-channel frequency-division multiplexing and demultiplexing in the millimeter-wave range. We show that this device architecture offers great flexibility to manipulate the filter Q-factors and the transmission spectra of different channels, by changing of the epsilon-near-zero metamaterial waveguide topology and by adding a standard waveguide between two epsilon-near-zero channels. This strategy of frequency-division multiplexing may pave a way for efficiently allocating the spectrum for future communication networks.

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