High performance distributed feedback quantum dot lasers with laterally coupled dielectric grating
Zhuohui Yang, Zhengqing Ding, Lin Liu, Hancheng Zhong, Sheng Cao,, Xinzhong Zhang, Shizhe Lin, Xiaoying Huang, Huadi Deng, Ying Yu, Siyuan Yu

TL;DR
This paper introduces a novel laterally coupled dielectric grating approach for quantum dot lasers, achieving high performance and reliability without traditional fabrication challenges, suitable for various material platforms.
Contribution
The paper presents a universal, controllable dielectric grating method enabling high-performance quantum dot DFB lasers across multiple material platforms.
Findings
Record side mode suppression ratio of 52.7 dB
Continuous-wave output power of 27.7 mW at room temperature
Ultra-low RIN of < -165 dB/Hz
Abstract
The combination of grating-based frequency-selective optical feedback mechanisms, such as distributed feedback (DFB) or distributed Bragg reflector (DBR) structures, with quantum dot (QD) gain materials is a main approach towards ultra-high-performance semiconductor lasers for many key novel applications, either as stand-alone sources or as on-chip sources in photonic integrated circuits. However, the fabrication of conventional buried Bragg grating structures on GaAs, GaAs/Si, GaSb and other material platforms have been met with major material regrowth difficulties. We report a novel and universal approach of introducing laterally coupled dielectric Bragg gratings to semiconductor lasers that allows highly controllable, reliable and strong coupling between the grating and the optical mode. We implement such a grating structure in a low-loss amorphous silicon material alongside GaAs…
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Taxonomy
TopicsPhotonic and Optical Devices · Semiconductor Lasers and Optical Devices · Semiconductor Quantum Structures and Devices
