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Passive coherent combining of 15 fiber lasers by phase contrast filtering

机译:相位对比滤波15纤维激光器的被动相干组合

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In recent years, laser arrays were extensively studied to create high power sources. Coherent combining techniques were developed to improve the brightness of such laser sources. Passive techniques in particular were widely investigated because of their simple operation based on self-organization of the laser. Nevertheless, phase-locking laser array of large size remains challenging because it leads to a decrease of the combined beam stability and efficiency [1]. Recently, we proposed a multiple feedback architecture including a phase contrast filtering and resonant non-linearity to overcome these limitations [2]. In such self-organized laser, we add a new degree of freedom by the phase contrast filtering which encodes the phase deviations between the multiple laser beams in intensity fluctuations. Resonant refractive index non-linearity, due to the gain saturation in the different amplifiers, performs an inverse transformation (amplitude/phase encoding) and compensates for residual phase deviations. After a first proof of principle with a four element laser [3], we will report new results with the successful phase-locking of arrays of 3×3 and then 4×4 Yb doped fiber lasers (with one laser missing). Far field patterns and laser optical spectra were recorded and compared to the ones measured with a standard cavity configuration. The combined power detected in the far field was observed to be significantly more stable in the former case than in the latter. This improved stability can be explained by the cooperative effects between phase contrast filtering and resonant non-linearity. The new architecture also offers extra opportunity for cavity resonance so that new frequencies may appear in the laser spectrum as it was noticed in the laser modeling. Recorded spectra attested the increased number of oscillating wavelengths with the phase contrast configuration. These new laser lines improved the robustness of the system against environmental perturbati- ns. The far field pattern of the 15 coupled lasers, the temporal evolution of its combined power and the output laser spectrum are shown Figure 1.
机译:近年来,广泛研究了激光阵列,以创造高电源。开发了相干的组合技术以改善这种激光源的亮度。特别是由于基于激光器的自组织的简单操作,特别是广泛研究了被动技术。然而,大尺寸的锁相激光阵列仍然具有挑战性,因为它导致组合光束稳定性和效率的降低[1]。最近,我们提出了一种多反馈架构,包括相位对比滤波和谐振非线性,以克服这些限制[2]。在这种自组织激光器中,我们通过相位对比滤波添加了新的自由度,该相位对比滤波器编码强度波动中的多个激光束之间的相位偏差。谐振折射率非线性,由于不同放大器中的增益饱和度,执行逆变换(幅度/相位编码)并补偿残留相位偏差。在使用四个元素激光[3]原理的第一个原理证明之后,我们将通过成功的3×3阵列的成功锁定新的结果,然后是4×4 yb掺杂光纤激光器(具有一个激光缺失)。记录和比较具有标准腔配置测量的远场模式和激光光谱。在前壳中观察到在远场中检测到的组合功率比在后者中明显更稳定。通过相位对比滤波和谐振非线性之间的协同效果,可以解释这种改善的稳定性。新架构还为腔谐振提供额外的机会,以便在激光建模中被注意到,新频率可能出现在激光谱中。记录的光谱通过相位对比度构造证明了振荡波长的数量增加。这些新的激光线改善了系统对环境扰乱的鲁棒性。图1中示出了15个耦合激光器的远场图案,其组合功率和输出激光谱的时间演变。

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