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首页> 外文期刊>Photonics Journal, IEEE >Cavity-Volume Scaling Law of Quantum-Dot Metal-Cavity Surface-Emitting Microlasers
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Cavity-Volume Scaling Law of Quantum-Dot Metal-Cavity Surface-Emitting Microlasers

机译:量子点金属腔表面发射微激光器的腔体积比例定律

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Quantum-dot (QD) metal-cavity surface-emitting microlasers are designed, fabricated, and characterized for various sizes of cavity volume for both lateral and vertical confinements. Microlasers using submonolayer QDs in the active region are fabricated according to our design model optimized for a resonant metal cavity. The cavity-volume scaling law is studied by our theoretical modeling and experimental demonstration. The smallest laser has a diameter of 1 $muhbox{m}$ with silver metal cladding operating at room temperature with electrical injection in pulsed mode. Our experimental results show significant self-heating effect in the smaller devices with a diameter of a few micrometers due to high series resistance and high threshold gain. With the use of hybrid metal-DBR mirrors, the number of DBR pairs in the top hybrid mirror can be reduced from 19.5 to 5.5 without sacrificing threshold current density.
机译:量子点(QD)金属腔表面发射微激光器的设计,制造和表征,适用于横向和垂直限制的各种腔体尺寸。根据我们针对共振金属腔优化的设计模型,制造了在有源区域中使用亚单层QD的微激光器。通过我们的理论建模和实验演示研究了腔体体积缩放定律。最小的激光器的直径为1微米,带有在室温下工作的银色金属覆层,并以脉冲模式进行电注入。我们的实验结果表明,由于具有较高的串联电阻和较高的阈值增益,在直径为几微米的较小型设备中,自发热效果显着。通过使用混合金属DBR镜,可以在不牺牲阈值电流密度的情况下将顶部混合镜中的DBR对的数量从19.5减少到5.5。

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