清华大学电子工程系微纳光电子学实验室欢迎您! English

黄翊东

博士 教授 长江学者
清华大学 学术委员会副主任
美国国家工程院外籍院士


通讯地址

清华大学电子工程系
清华大学罗姆电子工程馆2-103A
北京市海淀区,100084
Tel: +86-10-62797396
Fax: +86-10-62770317
电子邮件:yidonghuang@tsinghua.edu.cn


教育经历
1988~1994   清华大学电子工程系, 博士
(1991~1993   东京工业大学, 联合培养博士生)
1983~1988   清华大学电子工程系, 学士


工作经历
2003 至今     清华大学电子工程系, 教授
(2007~2012任清华大学电子工程系副系主任,2013-2019年任清华大学电子工程系主任)

1994~2003   NEC株式会社 光-无线器件研究所, 特聘研究员


所获荣誉

2022   天津市技术发明特等奖

2022   北京市教学成果一等奖

2017   中国光学十大进展 

2013   北京市教学成果一等奖

2007   入选"国家百千万人才工程"
2005   入选"长江学者"
2003   NEC株式会社 二等研究功绩奖
1997   NEC株式会社 一等研究功绩奖
1994   优秀博士论文奖


教学工作
多年从事教学管理工作,致力于电子信息领域知识体系的研究和人才培养,是清华大学电子信息大类课程体系的主要创建人之一。


主讲课程
固体物理基础 (2011-Now)
量子电子学 (2003-Now)
纳结构光电子学 (2004-2009)


学术兼职
现担任清华大学学术委员会副主任,美国光学学会会士(Fellow of OSA),中国光学学会常务理事、微纳光学专业委员会委员,中国电子教育学会副理事长、高等教育分会副会长, ACS Photonics杂志副主编。


研究工作经历
1994年毕业于清华大学电子工程系(博士学位)。1991年至1993年作为清华大学-日本东京工业大学联合培养博士生赴日本东京工业大学荒井研究室留学,在此期间从事了应变量子阱激光器及放大器增益特性的研究。首次在理论上提出拉伸应变量子阱具有高微分增益和窄线宽的新论点;采用单层拉伸变量子阱有源区结构, 成功研制出低阈值(217A/cm2)的FP腔激光器和楔形波导大功率(单模输出20.4dBm)光放大器;获得优秀博士论文奖。


1994年加入NEC光-无线器件研究所任特聘研究员,从事用于光纤通信领域的1.3及1.5微米DFB激光器的研究开发工作。提出DFB激光器"反射镜损耗反馈效应"的概念,为提高DFB激光器的性能提供了新的理论依据;发明"八分之一波长位移分布反馈"的新结构,在世界上首次实现了-20dB反射光注入状态下的无光隔离138公里传输;研究开发出独创的无温控抗反射PC-DFB激光器, 实现了从摄氏-40度到+85度的温度范围内无光隔离45公里传输;成功地研制出适合工作在高温环境下的FP腔激光器,实现了摄氏85度高温环境下无致冷工作时5mA的低阈值及输出功率5mW时仅20mA的低工作电流,是当时世界上报道的同类器件中最好的实验结果。于1997年获得NEC一等研究功绩奖,2003年获得NEC二等研究功绩奖。


2003年入选清华大学百人计划,任电子工程系教授,致力于纳结构光电子学领域的研究,承担过国家自然科学基金重点项目、973项目以及多项国际合作项目,带领课题组在光子晶体、表面等离子激元、硅基波导的研究中取得创新突破,研制出自由电子辐射、片上光谱相机、可预报单光子源、轨道角动量辐射等国际领先的集成光电子芯片;发表论文300余篇,引用数千次,申请专利182项(国际专利56项); 创建的跨材料体系光电子芯片工艺平台,已为500余个科研团队和企业提供光电子芯片的加工制备,推动解决光电子芯片微纳加工的“卡脖子”难题;同时积极推动科研成果的产业化,是光电子芯片企业华慧芯、与光科技、光函数科技的创始人。


微纳结构光电子器件相关代表性论文

[1] Ning Wu, Kaiyu Cui, Qiancheng Xu, Xue Feng, Fang Liu, Wei Zhang, and Yidong Huang, “On-chip mechanical exceptional points based on an optomechanical zipper cavity”, Science Advances, 9 (3), eabp8892, 2023.

[2] Jiawei Yang, Kaiyu Cui, Xusheng Cai, Jian Xiong, Hongbo Zhu, Shijie Rao, Sheng Xu, Yidong Huang, Fang Liu, Xue Feng, and Wei Zhang, “Ultraspectral imaging based on metasurfaces with freeform shaped meta-atoms”, Laser & Photonics Reviews, 16 (7), 2100663, 2022.

[3] 黄翊东*,张巍,冯雪,刘仿,崔开宇,“基于微纳结构的新功能光电子芯片”,中国激光(封底文章),48(15),1513001, 2021.

[4] Yidong Huang, “Twenty years of photonics”, ACS Photonics (IF:7.47),  Editorial, 8 (2), 384, 2021.
[5] Xuesi Zhao, Xue Feng, Fang Liu, Kaiyu Cui, Wei Zhang, and Yidong Huang, “A compound phase-modulated beam splitter to distinguish both spin and orbital angular momentum”, ACS Photonics, 7(1), 212, 2020.
[6] Yu Ye, Fang Liu, Mengxuan Wang, Lixuan Tai, Kaiyu Cui, Xue Feng, Wei Zhang, and Yidong Huang “Deep-ultraviolet Smith–Purcell radiation,” Optica, 6, 592, 2019.
[7] Fei Pan, Kaiyu Cui, Guoren Bai, Xue Feng, Fang Liu, Wei Zhang, and Yidong Huang, “Radiation-pressure-antidamping enhanced optomechanical spring sensing”, ACS Photonics, 5 (10), 4164, 2018.
[8] Fang Liu, Long Xiao, Yu Ye, Mengxuan Wang, Kaiyu Cui, Xue Feng, Wei Zhang, Yidong Huang, “Integrated Cherenkov radiation emitter eliminating the electron velocity threshold,” Nature Photonics, 11, 289, 2017.
[9] Peng Zhao, Shikang Li, Yu Wang, Xue Feng, Kaiyu Cui, Fang Liu, Wei Zhang, and Yidong Huang, “Identifying the tilt angle and correcting the orbital angular momentum spectrum dispersion of misaligned light beam“, Scientific Reports 7, 7873, 2017.
[10] Yu Wang, Václav Potoček, Stephen M. Barnett, and Xue Feng, “Programmable holographic technique for implementing unitary and nonunitary transformations”, Phys. Rev. A 95 (3), 33827, 2017.

[11] Shuai Dong, Xin Yao, Wei Zhang, Sijing Chen, Weijun Zhang, Lixing You, Zhen Wang, and Yidong Huang, “True single-photon stimulated four-wave mixing”, ACS Photonics, 4(4),746, 2017.
[12] Yu Wang, Peng Zhao, Xue Feng, Yuntao Xu, Fang Liu, Kaiyu Cui, Wei Zhang, and Yidong Huang, “Dynamically sculpturing plasmonic vortices: from integer to fractional orbital angular momentum”, Scientific Reports 6, 36269, 2016.
[13] Zhilei Huang, Kaiyu Cui, Yongzhuo Li, Xue Feng, Fang Liu, Wei Zhang, and Yidong Huang, “Strong optomechanical coupling in nanobeam cavities based on hetero optomechanical crystals”, Scientific Reports, 5, 15964, 2015.
[14] Yunxiang Li, Fang Liu, Yu Ye, Weisi Meng, Kaiyu Cui, Xue Feng, Wei Zhang, and Yidong Huang, “Two-surface-plasmon-polariton-absorption based lithography using 400 nm femtosecond laser,” Applied Physics Letters, 104(8), 081115, 2014.
[15] Yunxiang Li, Fang Liu, Long Xiao, Kaiyu Cui, Xue Feng, Wei Zhang, and Yidong Huang, “Two-surface-plasmon-polariton-absorption based nanolithography,” Applied Physics Letters, 102(6), 063113, 2013.
[16] Qi Xu, Fang Liu, Yuxiang Li, Kaiyu Cui, Xue Feng, Wei Zhang, and Yidong Huang, “Broadband light absorption enhancement in dye-sensitized solar cells with Au-Ag alloy popcorn nanoparticles,” Scientific Reports, 3, 2112, 2013.
[17] Kaiyu Cui, Xue Feng, Yidong Huang, Qiang Zhao, Zhilei Huang, and Wei Zhang, “Broadband switching functionality based on defect mode coupling in W2 photonic crystal waveguide,” Applied Physics Letters, 101(15), 151110, 2012.
[18] Di Qu, Fang Liu, Jiafan Yu, Wanlu Xie, Qi Xu, Xiangdong Li, and Yidong Huang, “Plasmonic core-shell gold nanoparticle enhanced optical absorption inphotovoltaic devices,” Applied Physics Letters, 98(11), 113119, 2011.
[19] Ruiyuan Wan, Fang Liu, and Yidong Huang, “Ultrathin layer sensing based on hybrid coupler with short-range surface plasmon polariton and dielectric waveguide,” Optics Letters, 35(2), 244-246, 2010.
[20] Fang Liu, Yidong Huang, Dai Ohnishi, Wei Zhang, and Jiangde Peng, “Hybrid three-arm coupler with long range surface plasmon polariton and dielectric waveguides,” Applied Physics Letters, 90(24), 241120, 2007.


面向光纤通信半导体光电器件相关代表性论文


[21] Yidong Huang, Kenji Sato, Tetsuro Okuda, Naofumi Suzuki, Satoshi Ae, Yoshiharu Muroya, Kazuo Mori, Tatsuya Sasaki, and Kenichi Kobayashi, "Low-chirp and external optical feedback resistant characteristics in l/8 phase-shifted DFB-LDs under direct modulation", IEEE J. Quantum Electronics 35(11), 1479, 2002.
[22] Yidong Huang, Tetsuro Okuda, Kenji Sato, Yoshiharu Muroya, Tatsuya Sasaki, and Kenichi Kobayashi, "Isolator-free 2.5-Gb/s, 80-km transmission by directly modulated l/8 phase-shifted DFB-LDs under negative feedback effect of mirror loss", IEEE Photonics Technology Letters, 13(3), 245, 2001.
[23] Yidong Huang, Tetsuro Okuda, Kazuhiro Shiba, Yoshiharu Muroya, Naofumi Suzuki, and Kenichi Kobayashi, "External optical feedback resistant 2.5-Gb/s transmission of partially corrugated waveguide laser diodes over a -40 to 80 C temperature range", IEEE Photonics Technology Letters, 11(11), 1482, 1999.
[24] Yidong Huang, Tetsuro Okuda, Kazuhiro Shiba, and Toshitaka Torikai, "High-yield external optical feedback resistant partially-corrugated-waveguide laser diodes", IEEE J. Quantum Electronics, 5(3), 435, 1999.
[25] Yidong Huang, Hirohito Yamada, Tetsuro Okuda, Toshitaka Torikai, and Takeshi Uji, "External optical feedback resistant characteristics in partially-corrugated-waveguide laser diodes", Electronics Letters, 32(11), 1008, 1996.
[26] Yidong Huang, Kazuhiro Komori, and Shigehisa Arai, "Saturation characteristics of Ga1-xInxAs/GaInAsP/ InP tensile-strained QW semiconductor laser amplifiers with tapered waveguide structures", IEEE J. Quantum Electronics, 30(9), 2034, 1994.
[27] Yidong Huang, Kazuhiro Komori, and Shigehisa Arai, "Reduction of noise figure in semiconductor laser amplifiers with Ga1-xInxAs/GaInAsP/InP strained quantum well structure", IEEE J. Quantum Electronics, 29(12), 2950, 1993.
[28] Yidong Huang, Shigehisa Arai, and Kazuhiro Komori, "Theoretical linewidth enhancement factor of Ga1-xInxAs/ GaInAsP/InP strained quantum well structures", IEEE Photonics Technology Letters, 5(2), 142, 1993.