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首页> 外文期刊>IEEE Transactions on Microwave Theory and Techniques >Photonic-Assisted Microwave Channelizer With Improved Channel Characteristics Based on Spectrum-Controlled Stimulated Brillouin Scattering
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Photonic-Assisted Microwave Channelizer With Improved Channel Characteristics Based on Spectrum-Controlled Stimulated Brillouin Scattering

机译:基于频谱控制受激布里渊散射的具有改进的信道特性的光子辅助微波信道器

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摘要

A photonic-assisted microwave channelizer with improved channel characteristics based on spectrum-controlled stimulated Brillouin scattering (SBS) is proposed and experimentally demonstrated. In the proposed system, $N$ lightwaves from a laser array are multiplexed and then split into two paths. In the upper path, the lightwaves are modulated by a microwave signal with its frequency to be measured. In the lower path, for each lightwave, the wavelength is shifted to a specific shorter wavelength via carrier-suppressed single-sideband modulation and the spectrum is then shaped. The wavelength-shifted and spectrum-shaped lightwaves are used to pump a single-mode fiber to trigger SBS. Thanks to the SBS effect, multiple gain channels at the $N$ wavelengths are generated. The channel profile of each channel, determined by the designed spectral shape of the pump source, is improved with a flat top and a reduced shape factor. The characteristics including the bandwidth, channel spacing, and channel profile can be controlled by adjusting the spectral shape of the pump source. A proof-of-concept experiment is performed. A microwave channelizer with a shape factor less than 2, a tunable channel bandwidth of 40, 60, or 90 MHz, and a tunable channel spacing of 50, 70, or 80 MHz, is demonstrated.
机译:提出并实验证明了一种基于光谱控制的受激布里渊散射(SBS)具有改进的通道特性的光子辅助微波通道器。在所提出的系统中,来自激光器阵列的 $ N $ 光波被复用,然后分成两条路径。在上部路径中,光波被微波信号调制,其频率将被测量。在下部路径中,对于每个光波,通过载波抑制的单边带调制将波长移至特定的较短波长,然后对频谱进行整形。波长偏移和频谱形状的光波用于泵浦单模光纤以触发SBS。由于SBS效应,在 $ N $ 波长处产生了多个增益通道。每个通道的通道轮廓(由泵浦源的设计光谱形状决定)通过平顶和减小的形状因数得到改善。可以通过调整泵浦源的光谱形状来控制包括带宽,通道间隔和通道轮廓在内的特性。进行了概念验证实验。展示了一种微波信道器,其形状因子小于2,可调信道带宽为40、60或90 MHz,可调信道间隔为50、70或80 MHz。

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