期刊文献+

紫外光通信用日盲型LED研究进展 被引量:2

Recent Progress of Solar Blind Light Emitting Diodes for Ultraviolet Optical Wireless Communication Use
在线阅读 下载PDF
导出
摘要 紫外光通信在激光雷达、战术通信、航空航天内部安全通讯和片上集成通信等领域有着重要应用前景。传统的紫外光通信LED光源的调制带宽窄、输出光功率低和制造工艺复杂等缺点限制了它在长距离、高速率通信和片上集成通信领域的广泛应用。实验表明,增加单个器件发光面积可提升光输出功率,但增加的器件电容对带宽提升是不利的,因此紫外光通信LED未来的重要研究方向是提升并优化带宽的同时增加器件的光功率密度。UVC Micro-LED器件有着光提取效率高、时间常数小、载流子寿命短、调制速率快及工作电流密度高等出色性能,因此在通讯领域受到科研界和工业界的广泛青睐。本文总结了紫外LED、特别是UVC MicroLED的相关研究进展,并重点介绍了它们在光通信及其片上集成互联方面的应用。研究发现,对UVC MicroLED及其阵列制备与性能提升加强研究,是未来提升自由空间和片上互联紫外通信系统性能的最佳解决方案之一。 Ultraviolet communication has extensive applications in laser radar,tactical communication,internal security communication in aerospace plane and on-chip integrated optical communication.Both of the bandwidth and light output power of the traditional deep ultraviolet communication LED were low,and the manufacturing process was complex,which limited their widespread application in long-distance,high-speed communication,and on-chip integrated optical communication fields.Experiments have shown that the increasing of the light emitting area of single device can improve the light output power,but the device capacitance has a negative effect on the bandwidth.Therefore,an important research direction for ultraviolet communication LEDs in the future is to improve the bandwidth and the optical power density of the devices simultaneously.UVC Micro-LEDs with higher light extraction efficiency,lower time constant,shorter carrier lifetime,faster modulated rate and higher current density than traditional LED have been widely favored by the scientific and industrial communities.This paper summarizes the UV LED,especially UVC Micro-LEDs related research progress,and their applications in optical communication and integration on a chip interconnection.It is found that deepening study on the preparation and performance improvement of UVC Micro-LEDs and their arrays will be one of the best solutions for improving the performance of free space and on-chip integrated ultraviolet communication systems in the future.
作者 郭春辉 孙雪娇 郭凯 张晓娜 王兵 魏同波 王申 苏晋荣 闫建昌 刘乃鑫 GUO Chunhui;SUN Xuejiao;GUO Kai;ZHANG Xiaona;WANG Bing;WEI Tongbo;WANG Shen;SU Jinrong;YAN Jianchang;LIU Naixin(College of Physics And Electronic Engineering,Shanxi Unversity,Taiyuan 030000,China;Research and Development Center for Semiconductor Lighting Technology,Institute of Semiconductors,Chinese Academy of Sciences,Beijing 100083,China;Shanxi Zhongke Lu􀆳an Ultraviolet Optoelectronics Technology Co.,Ltd.,Changzhi 046000,China)
出处 《发光学报》 EI CAS CSCD 北大核心 2023年第10期1849-1861,共13页 Chinese Journal of Luminescence
基金 2021年度山西省重点研发项目(202102030201007) 国家重点研发计划(2022YFB3604804)。
关键词 紫外光通信 微尺寸发光二极管 调制速率 片内集成光通信 光提取效率 ultraviolet optical wireless communication Micro-LEDs modulated rate on-chip integrated optical communication light extraction efficiency
作者简介 郭春辉(1998-),男,山西长治人,硕士研究生,2020年于哈尔滨工业大学获得学士学位,主要从事紫外光通信LED制备、优化及性能的研究。E-mail:Ch_guo1998@163.com;通讯作者:刘乃鑫(1981-),男,辽宁铁岭人,博士,助理研究员,2009年于中国科学院研究生院获得博士学位,主要从事宽禁带氮化物半导体材料的外延生长及发光器件的研究。E-mail:nxliu@semi.ac.cn。
  • 相关文献

参考文献10

二级参考文献62

  • 1李亚利,肖景林.无限深量子阱中强耦合极化子的基态结合能[J].发光学报,2005,26(4):436-440. 被引量:8
  • 2哈斯花,班士良.电子-空穴气屏蔽影响下有限深量子阱中电子与空穴的本征态[J].内蒙古大学学报(自然科学版),2007,38(3):272-277. 被引量:8
  • 3Chen Guoqing. On-Chip Copper-Based vs. Optical Interconnects: Delay Uncertainty, Latency, Power, and Bandwidth Density Comparative Predictions[C]. In: Proceedings of the IEEE International Interconnect Technology Conference, [s. l.]: IEEE, June 2006:39-41.
  • 4Ian O'Connor, Ecole Centrale de Lyon. On-Chip Optical Interconnect for Low-Power[R]. Paris France:Europe Design and Automation Association, February 2004.
  • 5Ian O ' Connor. Optical Solutions for SystemLevel Interconnect[C]. In: International Workshop on System-Level Interconnect Prediction, Paris France, February 2004.
  • 6Assaf Shacham, Keren Bergman, Luca P. Carloni. Photonic Networks-on-Chip for Future Generations of Chip Multi-Processors[J]. IEEE Transactions On Computers, 2008,57(05):686-701.
  • 7Nevin Klrman, Meyrem Klrman, Rajeev K. Dokania. Leveraging Optical Technology in Future Bus-based Chip Multiprocessors[C]. In: Proc. Int'l Symp. Microarchitecture (Micro 06),[s.l.]: IEEE CS Press, 2006:492-503.
  • 8ShachamA, Bergman K, Carloni L P. Maximizing GFLOPS-per-Watt: High-Bandwidth, Low Power Photonic On-Chip Networks [C]. In: P=ac^2 Conference, Yorktown Heights, New York, Oct. 2006.
  • 9Perlin P,Gorczyea I,Suski T,et al.Influence of pressure on the optical properties of InxGa1-xN epilayers and quantum structures[J].Phys.Rev.B,2001,64(11):115319-1-9.
  • 10Lepkowski S P,Teisseyre H,Suski T,et al.Piezoelectric field and its influence on the pressure behavior of the light emission from GaN/AIGaN strained quantum wells[J].Appl.Phys.Lett.,1999,79(10):1483-1485.

共引文献35

同被引文献10

引证文献2

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部