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Brillouin gain in optical fibers with inhomogeneous acoustic velocity

机译:声速不均匀的光纤中的布里渊增益

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The power available from narrow-linewidth single-transverse-mode fiber amplifiers is primarily limited by the onset of stimulated Brillouin scattering. One approach for increasing the SBS threshold that has shown recent promise is to tailor the acoustic velocity within the fiber cross-section to suppress Brillouin gain. Relating the SBS threshold to an acousto-optic effective area has yielded a theory which contradicts experimental measurements that indicate the nonlinear optical effective area of the tested SBS suppressing and Higher Order Mode (HOM) fibers is of primary importance in the nonlinear process. In this work, we present a new formalism for determining the Brillouin gain in fibers with inhomogeneous acoustic velocity which may be implemented with a wide variety of computational methods. We find that the Brillouin gain amplitude and spectrum are independent of the acousto-optic effective area and that they reduce to the bulk result for conventional step-index fibers. Implementing a finite-element method, we find that an SBS-suppressing design employing a negative focal length acoustic lens1 exhibits a broadened gain spectrum and reduced gain amplitude relative to step-index fibers. The SBS threshold of this fiber is increased by 8.4 dB relative to a standard large mode area fiber, each with an identical 6 meter length. Designs that further flatten the Brillouin gain spectrum have the potential to further increase the SBS threshold leading to higher single-frequency output power from devices incorporating these fibers.
机译:窄线宽单横模光纤放大器的可用功率主要受到受激布里渊散射的限制。一种已显示出近期前景的增加SBS阈值的方法是调整光纤横截面内的声速以抑制布里渊增益。将SBS阈值与声光有效面积相关联,产生了一个与实验测量结果相矛盾的理论,该实验结果表明,被测SBS抑制和高阶模(HOM)光纤的非线性光学有效面积在非线性过程中至关重要。在这项工作中,我们提出了一种新的形式主义,用于确定声速不均匀的光纤中的布里渊增益,可以用多种计算方法来实现。我们发现布里渊增益幅度和频谱与声光有效面积无关,并且它们减小到常规阶跃折射率光纤的体积结果。通过实施有限元方法,我们发现采用负焦距声透镜1的SBS抑制设计相对于阶跃折射率光纤表现出更宽的增益谱和更低的增益幅度。相对于标准的大模面积光纤,该光纤的SBS阈值增加了8.4 dB,每条光纤具有相同的6米长。进一步平坦化布里渊增益频谱的设计有可能进一步提高SBS阈值,从而导致采用这些光纤的设备产生更高的单频输出功率。

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