光学
激光器
带宽(计算)
光电子学
极限(数学)
模式(计算机接口)
物理
材料科学
电信
工程类
计算机科学
数学
操作系统
数学分析
作者
Chuyu Zhong,Jian Feng,Shupeng Deng,Shihao Ding,Wei Rao,Shiquan Pan,Zhao Chen,Xing Zhang,Wei Miao,Nannan Li,Jinlong Lu,Zhongmin He,Zhen Qiu,Yi‐Chun Chen,Hui Li,Cun‐Zheng Ning
标识
DOI:10.1002/lpor.202500880
摘要
ABSTRACT The rapid development of computation‐heavy applications, including artificial intelligence (AI), has driven exponentially growing demand for high‐speed optical modules, where 850 nm vertical‐cavity surface‐emitting lasers (VCSELs) play an important role. However, its transmission speed has long been limited to ≤100 Gb/s per lane (or bandwidth below 30 GHz) due to intrinsic physical processes. To overcome this bottleneck, coupled VCSELs are proposed as a mechanism to significantly exceed the bandwidth limit when light is partially selected to avoid spatial averaging. In this paper, we make the first attempt to experimentally verify this strategy by fabricating two coupled‐mesa VCSELs. While varying the distance between two coupled VCSELs, we compare the modulation bandwidth between two output collection approaches: entire collection and selective collection through a 5‐micron aperture. We observe a 37% improvement in modulation bandwidth from 27 GHz in the first case and 37.2 GHz in the second. This improved bandwidth represents the highest performance of 850 nm VCSELs so far and does not require complicated design or fabrication. This research offers a cost‐effective solution for next‐generation AI and data center applications and may also pave the way for a systematic exploration of out‐coupling strategies in ultra‐high‐speed VCSELs.
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