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High brilliance photonic band crystal lasers

机译:高亮度光子能带晶体激光器

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High concentration of optical power in a narrow exit angle is extremely important for numerous applications of laser diodes, for example, for low-cost fiber pumping and coupling, material processing, direct frequency conversion, etc. Lasers based on the longitudinal photonic band crystal (PBC) concept allow a robust and controllable extension of the fundamental mode over a thick multi-layer waveguide region to achieve a very large vertical optical mode spot size and, consequently, a very narrow vertical beam divergence. Many undesirable effects like beam filamentation, lateral multimode operation and catastrophic optical mirror damage (COMD) are strongly reduced. 650 nm GaInP/GaAlInP PBC lasers show narrow far field pattern (FWHM~7°) stable up to the highest output powers. Differential efficiency up to 85% is demonstrated. Total single mode output power as high as 150 mW is achieved in 4 μm-wide stripes in continuous wave operation, being limited by COMD due to not passivated facets. The lateral far field FWHM is 4 degrees. 840 nm GaAs/GaAlAs PBC lasers show a vertical beam divergence of 8° (FWHM) and a high differential efficiency up to 95% (L=500 μm). A total single mode CW power approaches 500 mW for 1 mm-long 4 μm-wide stripes devices at ~500 mA current, being COMD-limited. The lateral far field FWHM is 5 degrees. Another realization of a longitudinal PBC laser allows lasing in a single high-order vertical mode, a so-called tilted mode, which provides wavelength selectivity and substantially extends the possibility to control the thermal shift of the lasing wavelength. In a multilayer laser structure, where the refractive index of each layer increases upon temperature, it is possible to reach both a red shift of the lasing wavelength for some realizations of the structures, and a blue shift for some others. Most important, the absolute thermal stabilization of the lasing wavelength of a semiconductor laser can be realized.
机译:在狭窄的出射角内高度集中的光功率对于激光二极管的众多应用极为重要,例如,低成本的光纤泵浦和耦合,材料加工,直接变频等。基于纵向光子带晶体的激光器( PBC)概念允许在厚的多层波导区域上对基本模式进行鲁棒且可控的扩展,以实现非常大的垂直光学模式光斑尺寸,从而实现非常窄的垂直光束发散。大大减少了许多不良影响,例如光束丝状化,横向多模运行和灾难性光学镜损坏(COMD)。 650 nm GaInP / GaAlInP PBC激光器显示出窄远场图案(FWHM〜7°),稳定到最高输出功率。差分效率高达85%。在连续波操作中,在4μm宽的条带中可实现高达150 mW的总单模输出功率,由于未钝化的刻面而受到COMD的限制。横向远场FWHM为4度。 840 nm GaAs / GaAlAs PBC激光器显示出8°的垂直光束发散度(FWHM)和高达95%(L = 500μm)的高差分效率。对于1 mm长,4μm宽的带状器件,在〜500 mA电流下,单模CW总功率接近500 mW,这是COMD限制的。横向远场FWHM为5度。纵向PBC激光器的另一种实现方式允许在单个高阶垂直模式下进行激光发射,即所谓的倾斜模式,该模式可提供波长选择性,并大大扩展了控制激光发射波长热位移的可能性。在多层激光器结构中,每层的折射率随温度增加而增加,对于该结构的某些实现,既可以达到激光发射波长的红移,而对于另一些实现则可以达到蓝移。最重要的是,可以实现半导体激光器的激光波长的绝对热稳定。

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