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集成等离子体天线阵列准直器的量子级联激光器。

Quantum cascade lasers with integrated plasmonic antenna-array collimators.

作者信息

Yu Nanfang, Blanchard Romain, Fan Jonathan, Wang Qi Jie, Pflügl Christian, Diehl Laurent, Edamura Tadataka, Yamanishi Masamichi, Kan Hirofumi, Capasso Federico

机构信息

School of Engineering and Applied Sciences, Harvard University, Cambridge, Massachusetts 02138, USA.

出版信息

Opt Express. 2008 Nov 24;16(24):19447-61. doi: 10.1364/oe.16.019447.

Abstract

We demonstrated in simulations and experiments that by defining a properly designed two-dimensional metallic aperture-grating structure on the facet of quantum cascade lasers, a small beam divergence angle can be achieved in directions both perpendicular and parallel to the laser waveguide layers (denoted as theta perpendicular and theta parallel, respectively). Beam divergence angles as small as theta perpendicular=2.7 degrees and theta parallel=3.7 degrees have been demonstrated. This is a reduction by a factor of approximately 30 and approximately 10, respectively, compared to those of the original lasers emitting at a wavelength of 8.06 microm. The devices preserve good room temperature performance with output power as high as approximately 55% of that of the original unpatterned lasers. We studied in detail the trade-off between beam divergence and power throughput for the fabricated devices. We demonstrated plasmonic collimation for buried heterostructure lasers and ridge lasers; devices with different waveguide structures but with the same plasmonic collimator design showed similar performance. We also studied a device patterned with a "spider's web" pattern, which gives us insight into the distribution of surface plasmons on the laser facet.

摘要

我们在模拟和实验中证明,通过在量子级联激光器的端面上定义一个设计合理的二维金属孔径光栅结构,可以在垂直和平行于激光波导层的方向上(分别表示为θ垂直和θ平行)实现小的光束发散角。已经证明光束发散角小至θ垂直 = 2.7度和θ平行 = 3.7度。与波长为8.06微米的原始激光器相比,这分别减小了约30倍和约10倍。这些器件在室温下保持良好的性能,输出功率高达原始无图案激光器的约55%。我们详细研究了制造的器件在光束发散和功率通量之间的权衡。我们展示了掩埋异质结构激光器和脊形激光器的等离子体准直;具有不同波导结构但具有相同等离子体准直器设计的器件表现出相似的性能。我们还研究了一种用“蜘蛛网”图案图案化的器件,这使我们深入了解了激光端面上表面等离子体的分布。

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