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Extending Spatial and Temporal Characterization of Indoor Wireless Channels From 350 to 650 GHz

机译:将室内无线信道的时空特性从350 GHz扩展到650 GHz

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Communication at terahertz carrier frequencies is a promising way to satisfy the ever-growing demands for high-speed wireless networks. The studies of terahertz wireless channels have so far been limited to the atmospheric transmission bands below 350 GHz. Availability of high-power transmitters and high-sensitivity receivers at higher frequencies necessitates extending the wireless channel studies to enable higher data-rate communication systems. With a view to assessing communication system design requirements at higher frequencies, we present the channel measurement results for 650-GHz carrier frequencies in comparison with 350 GHz carrier frequencies in a typical indoor environment. To obtain the spatial and temporal characteristics of the channel, the power angle profile and the power delay profile are measured based on new measurement methods. Multiple spatially resolvable paths are observed at both 350- and 650-GHz carrier frequencies. Signal-to-noise ratio of the received signal through the non-line-of-sight (NLoS) paths is sufficiently high to enable robust communication when the direct line-of-sight (LoS) path is blocked due to a moving object. The measurement results are used to calculate the reduction in the 650-GHz channel capacity in comparison with that of the 350-GHz channel for both LoS and NLoS paths. Channel dispersion characterization over a 10-GHz bandwidth shows that the delay spreads for the resolved LoS and NLoS paths are less than 80 ps for both 350-and 650-GHz bands. Therefore, no complicated equalizer is required to compensate for channel dispersion at both 350 and 650-GHz, which greatly simplifies the terahertz transceiver design.
机译:以太赫兹载波频率进行通信是一种满足高速无线网络不断增长的需求的有前途的方法。迄今为止,太赫兹无线信道的研究仅限于350 GHz以下的大气传输频带。高功率发射器和高灵敏度接收器在较高频率下的可用性使得有必要扩展无线信道研究以实现更高数据速率的通信系统。为了评估更高频率下的通信系统设计要求,我们提供了与典型室内环境中的350 GHz载波频率相比的650 GHz载波频率的信道测量结果。为了获得信道的空间和时间特性,基于新的测量方法来测量功率角分布和功率延迟分布。在350 GHz和650 GHz载波频率上都可以观察到多个空间可分辨的路径。通过非视线(NLoS)路径接收到的信号的信噪比足够高,当直接视线(LoS)路径由于移动物体而被阻塞时,可以实现可靠的通信。测量结果用于计算LoS和NLoS路径的650 GHz信道容量与350 GHz信道相比的减少量。在10 GHz带宽上的信道色散特性表明,对于350 GHz和650 GHz频段,解析的LoS和NLoS路径的延迟扩展小于80 ps。因此,不需要复杂的均衡器来补偿350 GHz和650 GHz的信道色散,从而大大简化了太赫兹收发器的设计。

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