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Integrated coherent combining of angled-grating broad-area lasers: Design, fabrication and characterization.

机译:角度光栅广域激光器的集成相干组合:设计,制造和表征。

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摘要

In this thesis, we proposed, fabricated and demonstrated the coherent beam combining of angled-grating broad-area lasers. We have obtained the simultaneous coherent beam combining and single transverse mode operation completely on chip without any external phase control/components. Since the single transverse mode is the key to obtain diffraction-limit beam quality and high brightness, the proposed design is a good candidate for high power and high brightness applications. In the proposed coherently combined laser array, we use the angled-grating broad-area laser as the building block and overlap the adjacent emitters at one facet. The overlapped region becomes a 2D coupling region. And the coherent beam combining is obtained through the Bragg diffraction in these coupling regions.;The scalability of the proposed structure is also studied through a simplified zigzag array with the same topographic structure. The random phase difference among emitters in the array is assumed to be Gaussian distribution. And the brightness of the laser array is calculated at different random phase strength in two extreme situations: one is that only adjacent emitters are correlated and the other one is that all the emitters in the array are correlated. In the real zigzag laser array, the power of one emitter can be coupled into multiple neighbouring emitters. The scalability of the proposed structure should be between the two extreme situations. It should be similar to the performance of common cavity laser arrays.;The fabricated two coherently combined angled-grating broad-area lasers shows an interference pattern in the far field measurement indicating the two emitters are indeed coherently combined. However, the overall envelope shows double lobes. A further investigation reveals that the double lobes come from the uneven distribution of the injected current due to the lateral current leakage.;In order to reduce the etched area for lower optical and electrical loss, we decide to substitute the TBR grating with 2D triangle lattice photonic crystal cavity. There are two advantageous of 2D PC cavity, one is to reduce the surface defect states for less total loss, the other one is to control the longitudinal mode to obtain single wavelength as well as single transverse mode, since structure along the propagation direction is also periodic. The reason for choosing triangle lattice is to easily combine the 2D PC Bragg cavity in the same way we did in the coherent combining of angled-grating broad-area lasers. We solve for the first several photonic bands using MPB and determine the periods along the transverse and propagation directions for design purpose. Since these two periods are geometrically related too, we find discrete tilted angles to satisfied both resonant and geometric requirements. And usually the wavevector along the propagation direction is resonant with a high order grating vector. We fabricated both single and two combined PC Bragg lasers. As expected, the single 2D PC Bragg laser diode presents stable single wavelength optical spectrum without mode hopping during the measurement period. The far field also indicates near diffraction-limited beam quality. However, the combined laser diode shows multiple peaks in the far field profile due to the shallow etching depth.;Regrowth wafer is another way to reduce the total loss. In this project, since the grating is wet etched in the cladding layer which is much closer to the quantum well, the grating depth can be pretty shallow. Since we don't have any epitaxy layer growth facilities and experience, the epitaxy layer growth and regrowth process is done by a foundry service. After the quantum well is grown, the wafer is shipped to us and after the grating is etched, we ship them back to the service for regrowth process. Unfortunately, due to the surface cleanness, the wafer after regrowth has a lot of defects in it. All the devices including the broad-area lasers do not lase. Therefore, we couldn't evaluate the performance of the coherently combined lasers using regrowth epitaxy wafer.;We also investigate another interesting laser cavity design based on the angled-grating broad-area laser, which is the folded angled-grating broad-area laser. By using the symmetry of the snake-like lasing mode in the angled-grating broad-area laser, the angled-grating broad-area laser can be folded at the center to the other direction without disturbing the lasing mode. The experiment results confirm that with a well design cavity length, the folded cavity has a similar performance to that of the angled-grating broad-area laser. (Abstract shortened by UMI.).
机译:在本文中,我们提出,制造并演示了角光栅广域激光器的相干光束组合。我们完全在芯片上获得了同时相干光束合并和单横向模式操作,而无需任何外部相位控制/组件。由于单横模是获得衍射极限光束质量和高亮度的关键,因此该设计是高功率和高亮度应用的理想选择。在所提出的相干组合激光器阵列中,我们使用倾斜光栅广域激光器作为构件,并在一个面上重叠相邻的发射器。重叠区域变为2D耦合区域。并通过布拉格耦合在这些耦合区域中获得相干光束合并。;还通过具有相同拓扑结构的简化的之字形阵列研究了所提出结构的可扩展性。假设阵列中各发射器之间的随机相位差为高斯分布。并且在两种极端情况下,在不同的随机相位强度下计算激光阵列的亮度:一种是仅相邻的发射器相关,另一种是阵列中的所有发射器均相关。在实际的锯齿形激光器阵列中,一个发射器的功率可以耦合到多个相邻的发射器中。所提出的结构的可伸缩性应该在两种极端情况之间。它应该与普通腔激光器阵列的性能相似。所制造的两个相干组合的角光栅广域激光器在远场测量中显示出干涉图样,表明两个发射器确实是相干组合的。但是,整个包络显示双瓣。进一步的研究表明,双瓣来自横向电流泄漏导致注入电流的不均匀分布。为了减少蚀刻面积以降低光学和电损耗,我们决定用2D三角晶格代替TBR光栅光子晶体腔。 2D PC腔体有两个优点,一个是减少表面缺陷状态以减少总损耗,另一个则是控制纵向模式以获得单个波长以及单个横向模式,因为沿着传播方向的结构也是定期的。选择三角晶格的原因是,以与在角度光栅广域激光器的相干组合中相同的方式,可以轻松地组合2D PC布拉格腔。我们使用MPB求解前几个光子带,并确定横向和传播方向的周期,以用于设计目的。由于这两个周期也与几何相关,因此我们找到了离散的倾斜角,以满足共振和几何要求。通常,沿着传播方向的波矢会与高阶光栅矢量发生共振。我们制造了单台和两台组合式PC布拉格激光器。正如预期的那样,单个2D PC布拉格激光二极管在测量期间呈现稳定的单波长光谱,而无模式跳变。远场也表示受衍射限制的近光束质量。然而,由于浅蚀刻深度,组合的激光二极管在远场轮廓中显示出多个峰值。再生晶片是减少总损耗的另一种方法。在这个项目中,由于光栅是在更接近量子阱的覆层中被湿法刻蚀的,因此光栅的深度可以很浅。由于我们没有任何外延层的生长设施和经验,因此外延层的生长和再生过程由铸造服务完成。量子阱生长后,将晶圆运送给我们,蚀刻光栅之后,我们会将其运送回服务处进行再生处理。不幸的是,由于表面清洁,再生后的晶片中有很多缺陷。包括广域激光器在内的所有设备均不发光。因此,我们无法评估使用再生长外延晶片的相干组合激光器的性能。;我们还研究了另一种有趣的基于角光栅广域激光器的激光腔设计,即折叠角光栅广域激光器。 。通过在角度光栅广域激光器中使用蛇形激射模式的对称性,可以在不干扰激射模式的情况下将角度光栅广域激光器在中心折叠到另一个方向。实验结果证实,在设计良好的腔长的情况下,折叠腔的性能与角光栅广域激光器的性能相似。 (摘要由UMI缩短。)。

著录项

  • 作者

    Zhao, Yunsong.;

  • 作者单位

    Clemson University.;

  • 授予单位 Clemson University.;
  • 学科 Electrical engineering.;Optics.;Theoretical physics.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 130 p.
  • 总页数 130
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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