光电子学
能量转换效率
激光器
材料科学
垂直腔面发射激光器
量子效率
边坡效率
半导体激光器理论
电效率
纳秒
微分增益
光学
半导体
功率(物理)
光纤激光器
物理
波长
量子力学
作者
Yao Xiao,Jun Wang,Heng Liu,Pei Miao,Yudan Gou,Zhicheng Zhang,Guoliang Deng,Shouhuan Zhou
标识
DOI:10.1038/s41377-024-01403-7
摘要
Abstract High electro-optical conversion efficiency is one of the most distinctive features of semiconductor lasers as compared to other types of lasers. Its further increase remains a significant objective. Further enhancing the efficiency of edge-emitting lasers (EEL), which represent the highest efficiency among semiconductor lasers at present, is challenging. The efficiency of vertical cavity surface emitting lasers (VCSELs) has always been relatively low compared to EEL. This paper, combining modeling with experiments, demonstrates the potential of multi-junction cascaded VCSELs to achieve high efficiency beyond that of EELs, our simulations show, that a 20-junction VCSEL can achieve an efficiency of more than 88% at room temperature. We fabricated VCSEL devices with different numbers of junctions and compared their energy efficiency. 15-junction VCSELs achieved a maximum efficiency of 74% at room temperature under nanosecond driving current, the corresponding differential quantum efficiency exceeds 1100%, being the largest electro-optical conversion efficiency and differential quantum efficiency reported until now for VCSELs.
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