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教育经历2012.09 – 2015.06,法国巴黎高师,Laboratoire Kastler Brossel (LKB) 实验室,量子光学,博士 2009.09 – 2015.06,华东师范大学,精密光谱科学与技术国家重点实验室,光学,博士 2005.09 – 2009.07,华东师范大学,物理系,物理学,学士 工作经历2019.08 – ,华东师范大学,精密光谱科学与技术国家重点实验室,教授 2017.12 – 2019.07,上海理工大学,光电信息与计算机工程学院,特聘教授 2015.09 – 2017.08,巴黎第六大学,Kastler-Brossel实验室,博士后 个人简介黄坤,教授,博导。2015年相继获得华东师范大学与法国巴黎高师双重博士学位(博士论文链接)。博士论文曾获法国最高论文等级评定“Très Honorable”,随后任职于巴黎第六大学,在量子光学前沿阵地Kastler-Brossel实验室(拥有三位诺贝尔物理学奖获得者)从事红外光场灵敏探测与光量子调控等领域的研究工作。2017年底,经上海市海外人才计划引进回国,并获得国家青年高层次人才项目支持。长期致力于红外光场精密调控与红外超灵敏探测等前沿领域的研究,近年来在Nature Photon.、Nature Comm.、PRL、Optica、LPR等国际权威期刊共发表学术论文近100篇,主持承担科技部重点研发专项、基金委重点项目与面上项目、重庆市杰青等科研项目10余项,申请中国与美国发明专利25余项(授权10余项),担任 Euro. Phys. J. D 编委、Scientific Reports 编委、Nanomaterials 客座编辑、PhotoniX青年编委、Ulltrafast Science青年编委、《红外与激光工程》青年编委、中国光学工程学会高级会员、中国光学学会终身高级会员,入选重庆市“科技创新领军人才”,荣获中国电子学会技术发明二等奖、上海市优秀教学成果奖,以及“互联网+”大学生创新创业大赛优秀指导教师。 长期从事光量子信息处理、光场精密调控和光子超灵敏探测等前沿领域的研究:在国际上首次制备了光量子比特的杂化纠缠态,成果入选为Nature Photon.当期封面文章,被法国科学研究院 CNRS 和知名科学媒体Phys.org作亮点宣传,称该项工作“为长距离异质光量子网络的实现开辟了一条道路”;实现了国际最高效率的近红外光量子比特存储器,将此前的世界纪录提高了一倍,被学术同行评论为“量子存储领域的重大进步”、“真正量子存储的重要里程碑”,成果发表在Nature Comm.上;在实验上制备了国际上最高纯度的光子数态和最大尺寸的光学薛定谔猫态,相继发表在 PRL上,突破了长期以来量子态高保真度和高制备率难以兼得的技术难题,国际同行评论其为“一个新的方法,相较先前报道有着极为显著的进步,是该领域的重要突破”;发展了红外单光子非线性频率转换新技术,获得国际上最高的红外单光子转换效率,结合长波长泵浦和同步脉冲泵浦等高效噪声抑制方案,研制出噪声最低、灵敏度最高的中红外探测与成像系统,成果多次发表在Nature子刊上。 社会兼职2026.07- Scientific Reports,编委 2025.08 - PhotoniX,青年编委 2025.04 - Ultrafast Science,青年编委 2024.05 - 《红外与激光工程》,青年编委 2023.03 - European Physical Journal D,编委 2022.03 - 中国光学学会,终身高级会员 研究方向如果你对红外光子、光纤激光、探测成像与灵敏光谱等相关领域感兴趣,非常欢迎咨询、参观和加入。 研究方向 红外单光子测控与成像: 1. 红外非线性光子学 2. 单光子测控与应用 3. 红外光子计算成像 非线性红外光子学(Nonlinear Infrared Photonics)结合了经典非线性光学和现代光子学,横跨激光光谱学、精密测量、非线性光学、材料光学、量子光学等多个领域,从理论和实验上探究红外波段光场的产生、变换和探测,以及与物质的相互作用,主要探究红外光量子态的高效产生、精密调控和灵敏探测等方面的新原理和新技术,牵引红外光子测控、红外精密光谱、量子关联成像、和光量子信息处理等重要创新应用。这些研究涵盖了许多光学实验仪器和技术,包含激光器搭建、光学谐振器设计、微弱光检测、单光子探测和量子关联成像等。此外,系统控制与实验分析还将涉及到Python编程、机器学习、智能反馈等软硬件设计。 研究领域 红外光子探测、红外光子成像 、红外光纤激光、红外灵敏光谱等 涉及学科 非线性光学、激光光学、光电探测、量子光学、傅里叶光学、计算成像等 相关报道 - 中红外非线性并行多阶微分成像(2026,ACS Photonics)【参见报道:实验室、红外芯闻】 - 中红外多维上转换成像:进展与展望(2026,Applied Physics Review)【参见报道:实验室、红外芯闻】 - 非线性编码孔径成像(2026,Advanced Imaging)【参见报道:红外芯闻】 - 非线性矢量微分成像(2026,Physical Review Applied)【参见报道:红外芯闻、实验室】 - 单光子时间拉伸计算光谱(2026,Advanced Photonics)【参见报道:实验室、华东师大】 - 综述:红外双光子探测与成像技术研究进展(特邀,2026,红外与激光工程)【参见报道:红外芯闻】 - 综述:中红外单光子上转换光谱技术进展(特邀,2026,光子学报)【参见报道:西部光子期刊】 - 快照式中红外单光子光谱成像(2026, Nature Communications)【参见报道:实验室、华东师大】 - 中红外双光子时域鬼成像(2026, Photonics Research)【参见报道:实验室、红外芯闻、中国激光杂志社】 - 非线性结构门控的中红外运动去模糊(2026, Photonics Research)【参见报道:实验室、红外芯闻】 - 中红外单光子亚像素时域鬼成像(2026, Laser & Photonics Reviews)【参见报道:实验室、Materials News、红外芯闻】 - 超分辨中红外上转换近场成像(2026, Laser & Photonics Reviews)【参见报道:MaterialsViews、红外芯闻】 - 中红外高阶非线性拓扑微分成像(2025, Laser & Photonics Reviews)【参见报道:实验室、Materials News】 - 宽视场中红外上转换边缘增强成像(2025, ACS Photonics)【参见报道:实验室、红外芯闻】 - 时空复用单像素高光谱成像(2025, Laser & Photonics Reviews)【参见报道:精密光谱实验室、红外芯闻、Materials News】 - 中红外双光子计算成像(2025, PhotoniX)【参见报道:华东师大、PhotoniX、红外芯闻】 - 中红外非线性小孔成像(2025, Optica)【参见报道:华东师大、中国光学、光行天下、红外芯闻、Optica、Interview by Tech Briefs、EurekAlert、Science Daily, News Break、Photonics Media、SciTechDaily、EduTalkToday、Euro Security、BioEngineer、Electronics Weekly、Interesting Engineering】 - 中红外非线性空间复用高速成像(2025, Laser & Photonics Reviews)【参见报道:Material News、MEMS、LPS、激光与红外杂志】 - 高分辨中红外单光子计算时域鬼成像(2025, Laser & Photonics Reviews)【参见报道:红外芯闻、华东师大重研院、Advanced Science News】 - 中红外傅里叶叠层上转换成像(2024, Optica)【参见报道:华东师大、红外芯闻】 - 中红外光纤反馈光参量振荡器(2024, Photonics Research)【参见报道:光谱实验室、华东师大重研院】 - 中红外单光子计算光谱(2024, Laser & Photonics Reviews)【参见报道:华东师大重研院、Advanced Science News】 - 腔增强高灵敏中红外上转换探测(2024, Advanced Photonics Nexus)【参见报道:红外芯闻、华师大重研院】 - 高分辨中红外上转换单光子测距(2024, Photonics Research)【参加报道:红外芯闻、华师大重研院】 - 超高速中红外高光谱成像(2024, Nature Communications)【参加报道:华东师大、红外芯闻】 - 中红外单光子拉伸光谱(2024, Laser & Photonics Reviews)【参见报道:华东师大、光谱实验室、Advanced Science News】 - 中红外单光子三维成像(2023, Light: Science & Applications)【参见报道:华东师大、华师大重研院、中国光学进展】 - 高速中红外单光子光谱仪(2023, Laser & Photonics Reviews)【参见报道:华东师大、华师大重研院、中国光学进展、Material News、红外芯闻等】 - 超灵敏中红外单像素成像(2023, Nature COmmuncations)【详见报道华东师大、华师大重研院、中国科技网、中国光学进展、红外芯闻、两江新闻】 - 中红外单光子成像新突破(2022, Nature Communications)【受到华东师大、 人民网、两江科技评论、中国科技网、红外芯闻、激光行业观察、光行天下、MEMS、华东师范大学重庆研究院等多家单位与媒体报道】 - 红外成像技术新进展:中红外单光子边缘增强成像(2021, Laser & Photonics Reviews)【Advanced Science News、光学前沿评论】 - 基于高效非线性频率上转换的中红外光子探测与分辨(2021, Photonics Research) - 基于非简并双光子吸收的超灵敏红外光子探测(2021, Physica Review Applied) - Record-breaking efficiency for secure quantum memory storage(2018, Nature Communications) - A novel scheme to generate optical Schrodinger cat states leads to unprecedented size and preparation rate(2015, Physical Review Letters) - Entanglement between particle and wave-like states of light resembles Schrodinger's cat experiment(2014, Nature Photonics)
招生与培养本课题组长期招收: 1. 本科生,进行科创项目或毕业设计 2. 研究生,提供优质科研资源与平台 3. 博士后,具备光子探测、计算成像、红外光谱等研究背景 指导学生获奖与荣誉: ☆ 李雅楠,CLEO Pacific Rim 2026 优秀报告奖(2026) ☆ 张雯,华东师范大学优秀博士生学术创新能力提升计划项目(2026) ☆ 孙奔,上海市优秀毕业生(2026,博士) ☆ 凌静,华东师范大学校级优秀本科毕业论文(2026) ☆ 秦瑞阳,国家自然科学基金青年学生基础研究项目(2025) ☆ 孙奔,华东师范大学校长奖学金(2025) ☆ 张继熙,2024至2025学年华东师范大学优秀学业奖学金一等奖(2025,硕士) ☆ 彭敏,2024至2025学年华东师范大学优秀学业奖学金一等奖(2025,硕士) ☆ 张雯,优秀博士学位论文培育资助项目(2025) ☆ 马惠洁,优秀博士学位论文培育资助项目(2025) ☆ 马惠洁,2024至2025学年华东师范大学优秀学生(2025) ☆ 秦瑞阳,优秀博士学位论文培育资助项目(2025) ☆ 秦瑞阳,2024至2025学年华东师范大学优秀学生(2025) ☆ 李雅楠,2024-2025学年比亚迪奖学金(2025) ☆ 李雅楠,2024至2025学年华东师范大学优秀学生(2025) ☆ 宋月,2024-2025华东师范大学优秀毕业生(2025,硕士) ☆ 于梦瑶,2024-2025华东师范大学优秀毕业生(2025,硕士) ☆ 于婷婷,2024-2025华东师范大学优秀毕业生(2025) ☆ 郑婷婷,2024-2025学年上海市优秀毕业生(2025) ☆ 方迦南,中国博士后科学基金第18批特别资助(2025) ☆ 孙奔,华东师范大学优秀博士生学术创新能力提升计划项目(2025) ☆ 方迦南,上海市“超级博士后”(2024) ☆ 于婷婷,华东师范大学少数民族优秀学生奖学金(2024) ☆ 孙奔,博士研究生国家奖学金(2024) ☆ 韦焯航,Computational lmaging Conference (CITA2024) , Best Poster Presenctation Award ☆ 郑婷婷,麓邦光学奖学金(2024) ☆ 秦瑞阳,中国光学十大进展高峰论坛学术会议优秀快闪报告奖(2024) ☆ 方迦南,博士优秀学位论文(2024) ☆ 姜淑红,硕士优秀学位论文(2024) ☆ 刘笑涵,华东师范大学优秀毕业生(2024) ☆ 方迦南,上海市普通高等学校优秀毕业生(2024) ☆ 方迦南,博士研究生国家奖学金(2023) ☆ 于婷婷,华东师范大学少数民族优秀学生奖学金(2023) ☆ 王殷琪,华东师范大学优秀博士学位论文(2023) ☆ 于婷婷,优秀博士学位论文培育资助项目(2023) ☆ 郑婷婷,优秀博士学位论文培育资助项目(2023) ☆ 方迦南,2022至2023学年华东师范大学优秀学生(2023) ☆ 郑婷婷,2022-2023学年华东师范大学优秀学生(2023) ☆ 方迦南,优秀博士学位论文培育资助项目(2023) ☆ 王殷琪,上海市普通高等学校优秀毕业生(2023) ☆ 宋月,第十九届中国研究生建模竞赛一等奖(2023) ☆ 韩冰、康汇钰、李雅楠、李冉、袁博、任俞宣、刘笑涵、王殷琪、刘婷婷、陈皇宇,第十三届“挑战杯”上海市大学生创业计划竞赛,上海市银奖(2022) ☆ 王殷琪,博士研究生国家奖学金(2021) ☆ 于婷婷,硕士研究生国家奖学金(2021) ☆ 于婷婷,2020-2021学年华东师范大学优秀学生(2021) ☆ 王殷琪、韩冰、吕天健、温兆阳、郑婷婷、李冉、任心仪、刘婷婷,第七届互联网+大赛上海市银奖(2021) ☆ 刘婷婷、任心仪、王殷琪、方迦南、陆诗雨、郭政儒、侯璐,第六届互联网+大赛上海市银奖(2020) 指导博士研究生: ☆ 孙奔,宽波段中红外上转换光谱技术研究(2026) ☆ 郑婷婷,高分辨中红外上转换光谱与成像技术研究(2025) ☆ 于婷婷,多波长超快光纤激光被动同步技术研究(2025) ☆ 方迦南,大视场中红外上转换成像技术研究(2024) ☆ 王殷琪,基于非线性多维调控的中红外单光子上转换成像研究(2023) 指导硕士研究生: ☆ 于梦瑶,大视场中红外边缘增强上转换成像技术(2025) ☆ 宋月,基于外腔泵浦增强的中红外上转换成像研究(2025) ☆ 刘笑涵,基于外腔泵浦增强的中红外频率上转换探测(2024) ☆ 姜淑红,基于异步上转换采样的中红外单光子测距研究(2024) ☆ 徐明航,中红外超短脉冲高效率差频技术研究(2021) ☆ 康维艳,中红外频率上转换光子探测与计数(2021) ☆ 江云峰,光纤激光器全光被动同步与优化(2021) ☆ 李博文,宽波段可调谐中红外差频技术研究(2021) ☆ 曾静,被动全光同步的全保偏超快光纤激光系统(2020) ☆ 甘继伟,基于同步脉冲泵浦的高功率中红外超短脉冲产生(2020) 指导的本科生: ☆ 凌静,高阶中红外边缘增强成像(2026) ☆ 孙婧榕,基于非线性孔径滤波的中红外无透镜成像技术研究(2026) ☆ 李溢婧,基于光学外腔增强的中红外大视场成像技术研究(2025) ☆ 何紫瑜,基于非简并双光子吸收的中红外单像素成像技术研究(2025) ☆ 韩婷,高灵敏中红外计算光谱(2024) ☆ 吉思仪,高分辨中红外单光子测距(2024) ☆ 王昭毅,宽波段中红外差频光源制备(2024) ☆ 张继熙,高分辨中红外上转换成像(2024) ☆ 戚东升,宽调谐中红外光纤参量振荡器(2024) ☆ 马惠洁,宽波段中红外激光产生技术研究(2022) ☆ 王健,高精度温控设计与应用(2022) 开授课程6. 《光学》(本科生课程,3学分,54学时) 5. 《光谱技术》(本科生课程,3学分,38学时) 4. 《光谱技术实验》(本科生课程,0.5学分,16学时) 3. 《程序设计课程设计(C)》(本科生课程,2学分,32学时) 2. 《光电检测原理及应用》(研究生课程,3学分,38学时) 1. 《非线性光学》(研究生课程,3学分,38学时) 科研项目先后承担国家级科研项目 8项,省部级项目5项,其他项目2项。 学术成果Preprint: ☆ J. Zhang et al., “Incoherent mid-infrared edgedetection via configurable nonlinear filtering,” Laser & Photonics Reviews (2026). ☆ H. Ma, “Mid-infrared single-pixel imaging with a large-area GaAs sensor,” Physical Review Applied (2026). ☆ S. Liao, J. Zhang, J. Ling, J. Fang*, Y. Chen, R. Qin, Y. Li, Z. Wei, H. Ma, W. Zhang, K. Huang*, and H. Zeng, “Parallel Multiorder Mid-Infrared Spatial Differentiation via Nonlinear Multiplexing,” ACS Photonics (2026). Published 2026 127. Mei Yang, Yuan Chen, Tingting Liu, Zhuoren Wan, Yan Dai, Suyang Xu, Zhengru Guo, Kun Huang, Ming Yan, Heping Zeng, “Noise Suppression via Gain-Dispersion-Managed Nonlinear Amplification in a High-Power Er-Fiber Laser,” Laser & Photonics Reviews 20, e71831 (2026). 126. 黄坤*,秦瑞阳,方迦南,齐桢,曾和平*,中红外上转换多维成像技术研究进展 (特邀),激光与光电子学进展 63,1600001 (2026). [封面文章] 125. J. Fang, K. Huang*, R. Qin, Z. Qi, and H. Zeng*, “Mid-infrared multidimensional upconversion imaging: Progress and prospects,” Applied Physics Reviews 13, 031323 (2026). [Editor's Pick] 124. Y. Li, K. Huang*, J. Fang, J. Sun, R. Qin, and H. Zeng*, “Programmable nonlinear coded-aperture imaging in the mid-infrared,” Advanced Imaging 3, 051002 (2026). 123. Z. Wei, K. Huang*, and H. Zeng, “Nonlinear differential imaging via vectorial parametric interaction,” Physical Review Applied 26, 014036 (2026). 122. Z. Zhao, K. Huang*, B. Sun, B. Dong, W. Zhang, J. Fang, and H. Zeng*, “Single-photon time-stretch computational ghost spectroscopy,” Advanced Photonics 8, 046014 (2026). 121. J. Fang, K. Huang*, R. Qin, J. Zhang, and H. Zeng*, “Mid-infrared snapshot spectral imaging via nonlinear radial dispersion,” Nature Communications 17, 7517 (2026). 120. 黄坤*,孙奔,方迦南,曾和平*,中红外单光子上转换光谱技术进展 (特邀),光子学报 55,0555202 (2026). [封底文章] 119. 黄坤*,马惠洁,何紫瑜,方迦南,曾和平*,红外双光子探测与成像技术研究进展 (特邀),红外与激光工程 55,20260149 (2026). 118. Z. He, K. Huang*, H. Ma, W. Zhang, J. Fang, and H. Zeng, “Mid-infrared temporal ghost imaging via two-photon structured encoding,” Photonics Research 14, 1919-1927 (2026). 117. M. Peng, K. Huang*, R. Qin, J. Fang, and H. Zeng, “Mid-infrared motion deblurring via nonlinear structured gating,” Photonics Research 14, 1425-1432 (2026). 116. W. Zhang, K. Huang*, Z. Zhao, H. Ma, Z. He, J. Fang, and H. Zeng*, “Mid-infrared single-photon sub-pixel temporal ghost imaging,” Laser & Photonics Reviews 20, e02587 (2026). 115. J. Zhang, K. Huang*, S. Liao, Z. Wei, J. Fang, and H. Zeng, “High-order mid-infrared nonlinear topological differentiator,” Laser & Photonics Reviews 20, e02431 (2026). 114. Y. Chen, Z. Wan, Y. Xia, M. Li*, K. Huang, M. Yan*, and H. Zeng, “Passive phase and intensity noise suppression in optical combs via soliton self-frequency shift,” Advanced Photonics Nexus 5, 026013 (2026). 113. B. Sun, K. Huang*, Z. Zhao, B. Dong, J. Fang, and H. Zeng*, “Infrared single-pixel hyperspectral imaging via spatial-temporal multiplexing,” Laser & Photonics Reviews 20, e01321 (2026). 112. M. Li*, S. Tao, Z. Liu, Y. Xia, Y. Chen, X. Liu, S. Li, K. Huang, M. Yan, and H. Zeng, “Precise terahertz distance measurement enabled by electro-optic dual combs,” Photonics Research 14, 267-273 (2026). 111. M. Li*, Y. Xia, X. Liu, S. Tao, M. He, K. Huang, S. Li*, M. Yan, and H. Zeng*, “Compact terahertz dual-comb spectroscopy with all-digitally generated adaptive clock,” Advanced Physics Research 5, e00197 (2026). 110. M. Li*, Y. Xia, Y. Chen, S. Tao, M. He, K. Huang, H. Li, M. Yan*, and H. Zeng*, “Broadband terahertz comb with sub-Hz comb linewidth,” Advanced Photonics 8, 026015 (2026). 109. Y. Liang*, Y. Zhang, H. Wang, J. Ma, K. Huang, and H. Zeng, “GHz-gated silicon single-photon avalanche photodiode at high efficiency and high speed,” APL Photonics 11, 020801 (2026). 108. L. Cheng, Y. Chen*, Y. Cai, X. Wang, Y. Jia, K. Huang, and E Wu*, “Pyruvate in Aqueous Media Probed by Mid-Infrared Quantum Spectroscopy Based on Induced Coherence,” IEEE Journal of Selected Topics in Quantum Electronics 32, 5100108 (2026). 107. M. Yu, Z. Wei, J. Fang*, J. Zhang, T. Zheng, S. Liao, K. Huang*, and H. Zeng, “Wide-Field Mid-Infrared Edge-Enhanced Upconversion Imaging,” ACS Photonics 13, 991-999 (2026). 106. J. Guan, H. Zhang, Y. Li, Q. Shen, Z. Chai, J. Zhou, Z. Gao, J. Su, C. Duan, Y. Wang, K. Huang*, and K. Xia*, “Mid- to long-wave-infrared nanoscopy with lanthanide transducers,” Laser & Photonics Reviews 20, e01012 (2026). 2025 105. T. Liu, M. Yang, M. Yan, Z. Guo, Q. Hao, K. Huang, Y. Dai, and H. Zeng*, “Generation of 6-μJ ultrafast pulses from an Er-doped laser system,” Results in Physics 77, 108439 (2025). 104. H. Ma, K. Huang*, J. Fang, Z. He, Y. Liang, and H. Zeng, “Mid-infrared single-pixel imaging via two-photon optical encoding,” PhotoniX 6, 34 (2025). 103. Y. Song, J. Fang*, W. Zhang, Y. Li, B. Sun, Z. Jia, K. Huang*, and H. Zeng, “Wide-field mid-infrared cavity-enhanced upconversion imaging,” Advanced Photonics Nexus 4, 056003 (2025). 102. Z. Wang, H. Ma, J. Luo, M. Yan*, K. Huang, J. Fang, J. Ge, and H. Zeng*, “High-precision time-domain stereoscopic imaging with a femtosecond electro-optic comb,” Nature Communications 16, 6839 (2025). 101. W. Zhang, Z. Li*, Y. Wang, H. Pan, X. Chen, K. Huang, and G. Wu*, “High-resolution single-photon imaging by trajectory compensation scanning,” Optics Communications 582, 131668 (2025). 100. Y. Li, K. Huang*, J. Fang, Z. Wei, and H. Zeng, “Mid-infrared nonlinear pinhole imaging,” Optica 12, 1478-1485 (2025). 99. R. Qin, K. Huang*, M. Peng, J. Fang, B. Sun, Z. Guo, and H. Zeng*, “High-Speed Mid-Infrared Imaging via Nonlinear Multiplexed Detection,” Laser & Photonics Reviews 19, 2500308 (2025). 98. W. Zhang, K. Huang*, X. Wang, B. Sun, J. Fang, Y. Li, and H. Zeng*, “Mid-Infrared Single-Photon Computational Temporal Ghost Imaging,” Laser & Photonics Reviews 19, 2402180 (2025). 97. X. Zhu, Y. Wang, X. Li, Z. Li, H. Pan, X. Chen, P. Zhang, K. Huang, and G. Wu*, “Unknown weak light pulse measurement using time interval distribution photon counting,” Optics Letters 50, 1353-1356 (2025). 96. B. Sun, K. Huang*, H. Ma, J. Fang, T. Zheng, R. Qin, Y. Chu, H. Guo, Y. Liang, and H. Zeng*, “Mid-Infrared Single-Photon Compressive Spectroscopy,” Laser & Photonics Reviews 19, 2401099 (2025). 2024 95. T. Zheng, Z. Wei, K. Huang*, M. Yu, J. Fang, Z. Wen, J. Zhang, and H. Zeng, “Mid-infrared Fourier ptychographic upconversion imaging,” Optica 11, 1716-1724 (2024). 94. Z. Wei, K. Huang*, J. Fang, and H. Zeng, “Mid-infrared edge-enhanced imaging via angle-selective nonlinear filtering,” Optics Letters 49, 6373-6376 (2024). 93. M. S. Najafabadi*, L. L. Sánchez-Soto, K. Huang, J. Laurat, H. L. Jeannic, and G. Leuchs, “Intensity correlations in the Wigner representation,” Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences 382, 20230337 (2024). 92. X. Xin, Y. Chen*, Y. Cai, X. Wang, X. Dai, C. Wu, X. Yang, K. Dorfman, B. Wu, K. Huang, and E Wu*, “Time-stretched quantum spectroscopy of midinfrared plasmonic nanostructures,” Physical Review Applied 21, 064038 (2024). 91. T. Yu, J. Fang, K. Huang*, and H. Zeng, “Widely-tunable mid-infrared fiber-feedback optical parametric oscillator,” Photonics Research 12, 2123-2129 (2024). 90. S. Jiang, K. Huang*, T. Yu, J. Fang, B. Sun, Y. Liang, Q. Hao, E Wu, M. Yan, and H. Zeng, “High-resolution mid-infrared single-photon upconversion ranging,” Photonics Research 12, 1294-1302 (2024). 89. X. Liu, K. Huang*, W. Zhang, B. Sun, J. Fang, Y. Liang, and H. Zeng, “Highly sensitive mid-infrared upconversion detection based on external-cavity pump enhancement,” Advanced Photonics Nexus 3, 046002 (2024). 88. Y. Cai, Y. Chen*, K. Dorfman*, X. Xin, X. Wang, K. Huang, and E Wu*, “Mid-infrared single-photon upconversion spectroscopy enabled by nonlocal wavelength-to-time mapping,” Science Advances 10, eadl3503 (2024). 87. J. Fang, K. Huang*, R. Qin, Y. Liang, E Wu, M. Yan, and H. Zeng*, “Wide-field mid-infrared hyperspectral imaging beyond video rate,” Nature Communications 15, 1811 (2024). 86. B. Sun, K. Huang*, H. Ma, J. Fang, T. Zheng, Y. Chu, H. Guo, Y. Liang, E Wu, M. Yan, and H. Zeng*, “Single-Photon Time-Stretch Infrared Spectroscopy,” Laser & Photonics Reviews 18, 2301272 (2024). 85. Z. Wen, B. Peng, M. Yan*, T. Zheng, Q. Wen, T. Liu, X. Ren, K. Huang, and H. Zeng*, “Broadband Up-Conversion Mid-Infrared Time-Stretch Spectroscopy,” Laser & Photonics Reviews 18, 2300630 (2024). 2023 84. X. Ren, J. Pan, M. Yan*, J. Sheng*, C. Yang, Q. Zhang, H. Ma, Z. Wen, K. Huang, H. Wu*, and H. Zeng*, “Dual-comb optomechanical spectroscopy,” Nature Communications 14, 5037 (2023). 83. T. Lv, B. Han, M. Yan*, Z. Wen, K. Huang, K. Yang, and H. Zeng*, “Ultrahigh-Speed Coherent Anti-Stokes Raman Spectroscopy with a Hybrid Dual-Comb Source,” ACS Photonics 10, 2964-2971 (2023). 82. J. Fang, K. Huang*, E Wu, M. Yan, and H. Zeng*, “Mid-infrared single-photon 3D imaging,” Light: Science & Applications 12, 144 (2023). 81. T. Zheng, K. Huang*, B. Sun, J. Fang, Y. Chu, H. Guo*, E Wu, M. Yan, and H. Zeng, “High-Speed Mid-Infrared Single-Photon Upconversion Spectrometer,” Laser & Photonics Reviews 17, 2300149 (2023). 80. Y. Xia, M. Li*, Z. Liu, D. Liu, S. Bai, M. He, X. Shen, K. Yang, S. Yuan, M. Yan, K. Huang, and H. Zeng*, “A narrow linewidth terahertz dual-comb spectrometer with an all-fiber adaptive clock and a real-time feedback loop,” Optics & Laser Technology 162, 109314 (2023). 79. Y. Wang, K. Huang*, J. Fang, M. Yan, E Wu, and H. Zeng*, “Mid-infrared single-pixel imaging at the single-photon level,” Nature Communications 14, 1073 (2023). 78. J. Li, J. Wu, Q. Hao, K. Huang, K. Yang*, and H. Zeng, “Wavelength and repetition rate tunable high peak power dissipative soliton resonance in an all polarization maintaining Yb-doped fiber laser,” Optics & Laser Technology 162, 109204 (2023). 77. Y. Chen, Y. Cai, X. Xin, X. Wang, K. Huang, and E Wu*, “Low-noise synchronized mid-infrared upconversion spectrometer with a large spectral coverage,” Applied Physics Letters 122, 041103 (2023). 76. W. Wu, X. Shan, Y. Long, J. Ma, K. Huang, M. Yan, Y. Liang*, and H. Zeng, “Free-Running Single-Photon Detection via GHz Gated InGaAs/InP APD for High Time Resolution and Count Rate up to 500 Mcount/s,” Micromachines 14, 437 (2023). 75. M. Li, Z. Liu, Y. Xia, M. He, K. Yang, S. Yuan, M. Yan, K. Huang, and H. Zeng*, “Terahertz Time-of-Flight Ranging with Adaptive Clock Asynchronous Optical Sampling,” Sensors 23, 715 (2023). 2022 74. K. Huang* and H. Zeng*, “Special Issue: State-of-the-Art Nanophotonic and Optical Nanomaterials in China,” Nanomaterials 12, 2270 (2022). [Editorial Summary] 73. 王小月,王子健,彭博,黄坤,闫明*,刘伟伟,曾和平,基于时间拉伸的飞秒光丝动态测量方法研究,激光与光电子学进展 59,1336001 (2022). 72. Y. Cai, Y. Chen*, X. Xin, K. Huang, and E Wu*, “Mid-infrared single-photon upconversion spectroscopy based on temporal-spectral quantum correlation,” Photonics Research 10, 2614-2621 (2022). [Editor's Pick] 71. R. Li, X. Ren, B. Han, M. Yan*, K. Huang, Y. Liang, J. Ge, and H. Zeng, “Ultra-rapid dual-comb ranging with an extended non-ambiguity range,” Optics Letters 47, 5309-5312 (2022). 70. X. Ren, M. Yan*, Z. Wen, H. Ma, R. Li, K. Huang, and H. Zeng*, “Dual-comb quartz-enhanced photoacoustic spectroscopy,” Photoacoustics 28, 100403 (2022). 69. X. Wang, J. Nan, J. Xue, W. Liu, M. Yan*, S. Yuan, K. Huang, and H. Zeng*, “Filament-induced nonlinear hyperspectral fluorescence imaging,” Optics and Lasers in Engineering 156, 107109 (2022). 68. K. Huang*, J. Fang, M. Yan, E Wu, and H. Zeng*, “Wide-field mid-infrared single-photon upconversion imaging,” Nature Communications 13, 1077 (2022). 67. J. Lin, Y. Sun, W. Wu, K. Huang, Y. Liang*, M. Yan, and H. Zeng, “High-speed photon-number-resolving detection via a GHz-gated SiPM,” Optics Express 30, 7501-7510 (2022). 66. K. Yang, J. Wu, J. Ao, Q. Hao, M. Yan, K. Huang, M. Ji, and H. Zeng*, “Generation of broadband parabolic pulses based on a pre-chirper free, core-pumped nonlinear fiber amplifier for coherent anti-Stokes Raman imaging,” Optics Express 30, 7636-7646 (2022). 65. T. Yu, S. Jiang, J. Fang, T. Liu, X. Wu, M. Yan, K. Huang*, and H. Zeng, “Passive repetition-rate stabilization for a mode-locked fiber laser by electro-optic modulation,” Optics Letters 47, 1178-1181 (2022). 64. Y. Liang, B. Xu, Q. Fei, W. Wu, X. Shan, K. Huang, and H. Zeng*, “Low-timing-jitter GHz-gated InGaAs/InP Single-photon Avalanche Photodiode for LIDAR,” IEEE Journal of Selected Topics in Quantum Electronics 28, 3801807 (2022). 63. J. Fang, Y. Wang, E Wu, M. Yan, K. Huang*, and H. Zeng, “Single-Photon Infrared Imaging with a Silicon Camera Based on Long-Wavelength-Pumping Two-Photon Absorption,” IEEE Journal of Selected Topics in Quantum Electronics 28, 3801107 (2022). 2021 62. 方迦南,郭政儒,闫明,黄坤*,曾和平,同步脉冲诱导的高功率中红外差频产生技术 (特邀),红外与激光工程 50,20210314 (2021). 61. Y. Chen, Y.-J. Cai, X.-T. Li, K. Huang, J.-M. Liu, and E Wu*, “Interaction-Free Quantum Spectroscopy,” Advanced Photonics Research 2, 2000206 (2021). 60. Y. Wang, J. Fang, T. Zheng, Y. Liang, Q. Hao, E Wu, M. Yan, K. Huang*, and H. Zeng*, “Mid-Infrared Single-Photon Edge Enhanced Imaging Based on Nonlinear Vortex Filtering,” Laser & Photonics Reviews 15, 2100189 (2021). 59. T. Yu, J. Fang, Q. Hao, K. Yang, M. Yan, K. Huang*, and H. Zeng*, “High-precision passive stabilization of repetition rate for a mode-locked fiber laser based on optical pulse injection,” Optics Express 29, 20930-20940 (2021). 58. 王庆婷,杨康文*,沈悦,陈旭,郝强,黄坤,曾和平,基于超连续谱的可调谐同步脉冲产生及噪声分析,光学学报 41,0336001 (2021). 57. Z. Guo, Q. Hao, K. Huang, and H. Zeng*, “All-normal-dispersion mode-locked fiber laser with a tunable angle-spliced polarization-maintaining fiber Lyot filter,” IEEE Photonics Journal 13, 1-8 (2021). 56. K. Yang, L. Huo, J. Ao, Q. Wang, Q. Hao, M. Yan, K. Huang, M. Ji, and H. Zeng*, “Fast tunable all-polarization-maintaining supercontinuum fiber laser for CARS microscopy,” Applied Physics Express 14, 062004 (2021). 55. Z. Guo, T. Liu, J. Peng, Y. Zhu, K. Huang, and H. Zeng*, “Self-started dual-wavelength mode-locking with well-controlled repetition rate difference,” Journal of Lightwave Technology 39, 3575-3581 (2021). 54. Y. Wang, X. Wang, J. Peng, M. Yan*, K. Huang*, and H. Zeng, “Experimental observation of transient mode-locking in the buildup stage of a soliton fiber laser,” Chinese Optics Letters 19, 071401 (2021). 53. X. Ren, B. Xu, Q. Fei, Y. Liang*, J. Ge, X. Wang, K. Huang, M. Yan*, and H. Zeng, “Single-Photon Counting Laser Ranging With Optical Frequency Combs,” IEEE Photonics Technology Letters 33, 27-30 (2021). 52. K. Huang*, Y. Wang, J. Fang, W. Kang, Y. Sun, Y. Liang, Q. Hao, M. Yan, and H. Zeng, “Mid-infrared photon counting and resolving via efficient frequency upconversion,” Photonics Research 9, 259-265 (2021). 51. K. Huang*, Y. Wang, J. Fang, H. Chen, M. Xu, Q. Hao, M. Yan, and H. Zeng*, “Highly efficient difference-frequency generation for mid-infrared pulses by passively synchronous seeding,” High Power Laser Science and Engineering 9, E4 (2021). 2020 50. J. Fang, Y. Wang, M. Yan, E Wu, K. Huang*, and H. Zeng*, “Highly Sensitive Detection of Infrared Photons by Nondegenerate Two-Photon Absorption Under Midinfrared Pumping,” Physical Review Applied 14, 064035 (2020). 49. K. Yang, H. Li, H. Gong, X. Shen, Q. Hao, M. Yan, K. Huang, and H. Zeng*, “Temperature measurement based on adaptive dual-comb absorption spectral detection,” Chinese Optics Letters 18, 051401 (2020). 48. 徐明航,武佳美,李博文,江云峰,郝强,杨康文,黄坤*,曾和平,基于被动全光同步的高效率中红外差频产生技术研究,光学学报 40,2036001 (2020). 47. 李博文,武佳美,徐明航,江云峰,郝强,杨康文,黄坤*,曾和平,基于被动同步的宽调谐中红外差频技术研究,中国激光 47,1115001 (2020). 46. 江云峰,武佳美,郝强,黄坤*,曾和平,全保偏被动同步的双色锁模光纤激光器的实验研究,光学学报 40,0936001 (2020). 45. Y. Wang, X. Ren, K. Huang, M. Yan*, and H. Zeng, “Frequency comb interference spectroscopy using a fiber laser comb and a multi-colour laser,” Laser Physics 30, 055702 (2020). 44. K. Yang, Y. Shen, J. Ao, S. Zheng, Q. Hao, K. Huang, M. Ji, and H. Zeng*, “Passively synchronized mode-locked fiber lasers for coherent anti-Stokes Raman imaging,” Optics Express 28, 13721-13730 (2020). 43. X. Ren, H. Dai, D. Li, K. Huang, M. Hu, T. Lv, M. Yan*, and H. Zeng, “Mid-infrared electro-optic dual-comb spectroscopy with feedforward frequency stepping,” Optics Letters 45, 776-779 (2020). 42. W. Kang, B. Li, Y. Liang, Q. Hao, M. Yan, K. Huang*, and H. Zeng, “Coincidence-pumping upconversion detector based on passively synchronized fiber laser system,” IEEE Photonics Technology Letters 32, 184-187 (2020). 41. H. Xu, S. Yuan*, Z. Guo, Q. Zhang, Y. Ma, Q. Hao, K. Huang, M. Li, Y. Nie, and H. Zeng, “Femtosecond Red and Near-Infrared Lasers Due to Cascaded-Raman-Assisted Four-Wave Mixing in a Nonlinear Yb-Doped Fiber Amplifier,” Applied Sciences 10, 669 (2020). 40. 贺明洋,李敏*,袁帅,黄坤,郭政儒,张青山,夏宇,曾和平,高功率飞秒自相似光纤激光放大系统,中国激光 47,0308001 (2020). 39. 胡晓蕾,甘继伟,杨占军,曾静,贡航,黄坤,郝强*,曾和平,基于全保偏光纤利用脉冲同步技术差频产生中红外皮秒激光,光学学报 40,0736001 (2020). 2019 38. J. Zeng, B. Li, Q. Hao, M. Yan, K. Huang*, and H. Zeng, “Passively synchronized dual-color mode-locked fiber lasers based on nonlinear amplifying loop mirrors,” Optics Letters 44, 5061-5064 (2019). 37. X. Wang, J. Peng, K. Huang, M. Yan*, and H. Zeng*, “Experimental study on buildup dynamics of a harmonic mode-locking soliton fiber laser,” Optics Express 27, 28808-28815 (2019). 36. K. Huang*, H. Le Jeannic, O. Morin, T. Darras, G. Guccione, A. Cavaillès, and J. Laurat*, “Engineering optical hybrid entanglement between discrete- and continuous-variable states,” New Journal of Physics 21, 083033 (2019). 35. 郑世凯,杨康文*,敖建鹏,叶蓬勃,郝强,黄坤,季敏标,曾和平,光纤式相干拉曼散射成像光源研究进展,中国激光46,0508008 (2019). 34. Q. Hao*, Q. Qiao, H. Fu, J. Peng, K. Huang, and H. Zeng, “Observation of Soliton Molecules in NPR Mode-Locked Er-Fiber Laser via Birefringence Management,” IEEE Photonics Technology Letters 31, 639-642 (2019). 33. K. Huang, J. Gan, J. Zeng, Q. Hao, K. Yang, M. Yan, and H. Zeng*, “Observation of spectral mode splitting in a pump-enhanced ring cavity for mid-infrared generation,” Optics Express 27, 11766-11775 (2019). 32. Y. Liang, Q. Fei, Z. Liu, K. Huang, and H. Zeng*, “Low-noise InGaAs/InP single-photon detector with widely tunable repetition rates,” Photonics Research 7, A1-A6 (2019). 31. K. Yang, S. Zheng, P. Ye, Q. Hao, K. Huang*, and H. Zeng, “Fiber-based optical parametric oscillator with flexible repetition rates by rational harmonic pumping,” Optics Express 27, 4897-4906 (2019). 30. X. Wang, X. Ren, J. Peng, X. Shen, K. Huang, M. Yan*, and H. Zeng, “On the Q-switching bunch dynamics in the build-up of stretched-pulse mode-locking,” Optics Express 27, 2747-2753 (2019). 2018 29. K. Huang, J. Zeng, J. Gan, Q. Hao, M. Yan, and H. Zeng*, “Passive all-optical synchronization for polarization-maintaining mode-locked fiber lasers,” Optics Express 26, 32184-32193 (2018). 28. H. Le Jeannic, A. Cavaillès, J. Raskop, K. Huang, and J. Laurat*, “Remote preparation of continuous-variable qubits using loss-tolerant hybrid entanglement of light,” Optica 5, 1012-1015 (2018). 27. K. Huang, J. Zeng, J. Gan, Q. Hao, and H. Zeng*, “Controlled generation of ultrafast vector vortex beams from a mode-locked fiber laser,” Optics Letters 43, 3933-3936 (2018). 26. K. Yang, S. Zheng, Y. Wu, P. Ye, K. Huang, Q. Hao, and H. Zeng*, “Low-repetition-rate all-fiber integrated optical parametric oscillator for coherent anti-Stokes Raman spectroscopy,” Optics Express 26, 17519-17528 (2018). 25. H. Le Jeannic, A. Cavaillès, K. Huang, R. Filip*, and J. Laurat*, “Slowing Quantum Decoherence by Squeezing in Phase Space,” Physical Review Letters 120, 073603 (2018). 24. P. Vernaz-Gris, K. Huang*, M. Cao, A. S. Sheremet, and J. Laurat*, “Highly-efficient quantum memory for polarization qubits in a spatially-multiplexed cold atomic ensemble,” Nature Communications 9, 363 (2018). [coverage by Phys.org] 23. K. Yang, P. Zhao, J. Luo, K. Huang, Q. Hao, and H. Zeng*, “Comparison on different repetition rate locking methods in Er-doped fiber laser,” Laser Physics 28, 055108 (2018). 22. K. Yang, Y. Wu, J. Jiang, P. Ye, K. Huang, Q. Hao, and H. Zeng*, “Fiber Optical Parametric Oscillator and Amplifier for CARS Spectroscopy,” IEEE Photonics Technology Letters 30, 967-970 (2018). 21. K. Yang, P. Ye, S. Zheng, J. Jiang, K. Huang, Q. Hao, and H. Zeng*, “Polarization switch of four-wave mixing in a tunable fiber optical parametric oscillator,” Optics Express 26, 2995-3003 (2018). Before 2017 20. X. Chen, C. Ding, H. Pan, K. Huang, J. Laurat, G. Wu, and E Wu*, “Temporal and spatial multiplexed infrared single-photon counter based on high-speed avalanche photodiode,” Scientific Reports 7, 44600 (2017). 19. Q. Hao, G. Zhu, S. Yang, K. Yang, T. Duan, X. Xie, K. Huang, and H. Zeng*, “Mid-infrared transmitter and receiver modules for free-space optical communication,” Applied Optics 56, 2260-2264 (2017). 18. K. Yang, G. Zhu, Q. Hao, K. Huang, J. Laurat, W. Li, and H. Zeng*, “Coherent polarization beam combination by microcontroller-based phase-locking method,” IEEE Photonics Technology Letters 28, 2129-2132 (2016). 17. H. Le Jeannic, V. B. Verma, A. Cavaillès, F. Marsili, M. D. Shaw, K. Huang, O. Morin, S. W. Nam, and J. Laurat*, “High-efficiency WSi superconducting nanowire single-photon detectors for quantum state engineering in the near infrared,” Optics Letters 41, 5341-5344 (2016). 16. K. Huang, H. Le Jeannic, V. B. Verma, M. D. Shaw, F. Marsili, S. W. Nam, E Wu, H. Zeng, O. Morin, and J. Laurat*, “Experimental quantum state engineering with time-separated heraldings from a continuous-wave light source: A temporal-mode analysis,” Physical Review A 93, 013838 (2016). 15. J. Ma, X. Li, W. Wu, K. Huang, H. Pan*, and E Wu, “Spatial modulation characteristics of single-photon frequency up-conversion systems pumped by Gaussian laser beam,” Optoelectronics Letters 11, 477-480 (2015). 14. L. Zhao, K. Huang, Y. Liang, J. Chen, X. Shi, E Wu, and H. Zeng*, “Quantum witness of high-speed low-noise single-photon detection,” Optics Express 23, 31857-31863 (2015). 13. K. Huang, H. Le Jeannic, J. Ruaudel, V. B. Verma, M. D. Shaw, F. Marsili, S. W. Nam, E Wu, H. Zeng, Y.-C. Jeong, R. Filip, O. Morin, and J. Laurat*, “Optical Synthesis of Large-Amplitude Squeezed Coherent-State Superpositions with Minimal Resources,” Physical Review Letters 115, 023602 (2015). [Coverage by Phys.org] 12. C. Hu*, K. Huang, X. Hu, Y. Liu, F. Yuan, Q. Wang, and G. Fu*, “Measuring the cognitive resources consumed per second for real-time lie-production and recollection: a dual-tasking paradigm,” Frontiers in Psychology 6, 596 (2015). [co-develop a so-called follow me software for lie-detection] 11. K. Huang, H. Le Jeannic, J. Ruaudel, O. Morin, and J. Laurat*, “Microcontroller-based locking in optics experiments,” Review of Scientific Instruments 85, 123112 (2014). 10. O. Morin, K. Huang, J. Liu, H. Le Jeannic, C. Fabre, and J. Laurat*, “Remote creation of hybrid entanglement between particle-like and wave-like optical qubits,” Nature Photonics 8, 570-574 (2014). [Journal cover] 9. O. Morin, J. Liu, K. Huang, F. Barbosa, C. Fabre, and J. Laurat*, “Quantum State Engineering of Light with Continuous-Wave Optical Parametric Oscillators,” Journal of Visualized Experiments 87, e51224 (2014). 8. K. Huang, X. Gu, Q. Zhou, H. Pan, E Wu*, and H. Zeng*, “Efficient generation of mid-infrared photons at 3.16 μm by coincidence frequency downconversion,” Laser Physics 23, 045401 (2013). 7. Q. Zhou, K. Huang, H. Pan, E Wu*, and H. Zeng*, “Ultrasensitive mid-infrared up-conversion imaging at few-photon level,” Applied Physics Letters 102, 241110 (2013). 6. X. Gu, K. Huang, H. Pan, E Wu*, and H. Zeng*, “Efficient mid-infrared single-photon frequency upconversion detection with ultra-low background counts,” Laser Physics Letters 10, 055401 (2013). 5. K. Huang, X. Gu, H. Pan, E Wu*, and H. Zeng*, “Few-photon-level two-dimensional infrared imaging by coincidence frequency upconversion,” Applied Physics Letters 100, 151102 (2012). 4. K. Huang, X. Gu, H. Pan, E Wu*, and H. Zeng*, “Synchronized fiber lasers for efficient coincidence single-photon frequency upconversion,” IEEE Journal of Selected Topics in Quantum Electronics 18, 562-566 (2012). 3. X. Gu, K. Huang, H. Pan, E Wu*, and H. Zeng*, “Photon correlation in single-photon frequency upconversion,” Optics Express 20, 2399-2407 (2012). 2. K. Huang, X. Gu, M. Ren, Y. Jian, H. Pan, G. Wu, E Wu*, and H. Zeng*, “Photon-number-resolving detection at 1.04 μm via coincidence frequency upconversion,” Optics Letters 36, 1722-1724 (2011). 1. X. Gu, K. Huang, Y. Li, H. Pan, E Wu*, and H. Zeng*, “Temporal and spectral control of single-photon frequency upconversion for pulsed radiation,” Applied Physics Letters 96, 131111 (2010). 荣誉及奖励获奖与荣誉: ☆ 技术发明二等奖,中国电子学会(2023) ☆ 上海市优秀教学成果二等奖,上海市教育委员会(2022) ☆ 研究生优秀毕业生,华东师范大学(2015) ☆ 博士研究生国家奖学金,中华人民共和国教育部(2013) ☆ 第十二届“挑战杯”全国课外学术科技作品竞赛二等奖,中华人民共和国教育部(2011) ☆ 博士研究生学术新人奖,华东师范大学(2011) ☆ 第十九届“大夏杯”课外学术作品竞赛一等奖,华东师范大学(2011) ☆ 上海市优秀毕业生,上海市教育委员会(2009) |