Opt Lett. 2023 Jun 15;48(12):3291-3294. doi: 10.1364/OL.493494.
The transient stimulated Brillouin scattering (SBS) effect, enabled by optical chirp chain (OCC) technology, has already been proposed and demonstrated for microwave frequency identification with high temporal resolution. Through increasing the OCC chirp rate, the instantaneous bandwidth can be effectively extended without loss of the temporal resolution. However, the higher chirp rate results in more asymmetric transient Brillouin spectra, which worsens the demodulation accuracy when using the traditional fitting method. In this Letter, advanced algorithms, including image processing and artificial neural network, are employed to improve the measurement accuracy and demodulation efficiency. A microwave frequency measurement scheme is implemented with 4 GHz instantaneous bandwidth and 100 ns temporal resolution. Through the proposed algorithms, the demodulation accuracy of transient Brillouin spectra under 50 MHz/ns high chirp rate is improved from 9.85 MHz to 1.17 MHz. Moreover, owing to the matrix computations of the proposed algorithm, the time consumption is reduced by two orders of magnitude compared with the fitting method. The proposed method allows a high-performance OCC transient SBS-based microwave measurement, which provides new possibilities to realize real-time microwave tracking for diverse application fields.
基于光学啁啾链 (OCC) 技术的瞬态受激布里渊散射 (SBS) 效应已经被提出并证明可用于具有高时间分辨率的微波频率识别。通过增加 OCC 的啁啾速率,可以在不损失时间分辨率的情况下有效地扩展瞬时带宽。然而,更高的啁啾速率会导致更不对称的瞬态布里渊光谱,这会降低使用传统拟合方法时的解调精度。在本信中,采用了图像处理和人工神经网络等先进算法来提高测量精度和解调效率。实现了一种具有 4GHz 瞬时带宽和 100ns 时间分辨率的微波频率测量方案。通过所提出的算法,在 50MHz/ns 高啁啾速率下,瞬态布里渊光谱的解调精度从 9.85MHz 提高到 1.17MHz。此外,由于所提出算法的矩阵计算,与拟合方法相比,时间消耗降低了两个数量级。该方法允许基于 OCC 瞬态 SBS 的高性能微波测量,为实现各种应用领域的实时微波跟踪提供了新的可能性。