Research Interests

Research interests: High-speed optical fibre communication technology, millimetre-wave and terahertz wave communication technology, fibre-wireless integration technology

PhD Graduates Supervised (last 5 years):

2021: Kaihui Wang (Fudan), Yiran Wei (ZTE)

2022: Miao Kong (Huawei), Yanyi Wang (Shanghai University)

2023: Junjie Ding (Purple Mountain Laboratories), Feng Wang (Satellite Network), Bowen Zhu (Pengcheng Laboratory), Cuiwei Liu (Hunan Normal University)

2024: Junting Shi (Huawei), Weiping Li (National Postdoctoral Innovative Talent Programme, Fudan), Jiaxuan Liu (Satellite Network)

2025: Bohan Sang (Huawei), Chen Wang (Huawei), Yi Wei (Xi’an University of Posts and Telecommunications), Xiongwei Yang (Xi’an University of Posts and Telecommunications), Long Zhang (Purple Mountain Laboratories)

Additionally, co-supervised approximately 10 PhD students at Beijing University of Posts and Telecommunications, Fudan University, and Hunan University.

Postdoctoral Fellows Supervised:

Jiangnan Xiao (University of Shanghai for Science and Technology), Zihang Zhu (National Postdoctoral Innovative Talent), Wen Zhou (Fudan), Kaihui Wang (National Postdoctoral Innovative Talent), Li Zhao (Nanjing University of Posts and Telecommunications), Weiping Li (National Postdoctoral Innovative Talent)

Current Principal Research Projects:

2023-2026: National Key R&D Programme – Tbps Terahertz Optical Fibre Integrated Fusion Communication System and Key Technologies, Principal Investigator

2025-2029: NSFC Major Research Instrumentation Development Project – Development of Multi-Standard Intelligent Broadband Optical Vector Signal Generator and Analyser, Principal Investigator

2024-2028: NSFC Joint Fund Key Support Project – Novel Broadband Access Technology Integrating Optical and Millimetre Waves, Principal Investigator

Academic Service

Former Associate Editor of OSA J. of Optical Networking, IEEE/OSA Optical Communications and Networking, IEEE/OSA J. of Lightwave Technology, IEEE Photonics Journal; and Editor-in-Chief of Recent Patents on Engineering.

Professor or Adjunct Professor at Georgia Institute of Technology (USA), Hunan University, Beijing University of Posts and Telecommunications, Purple Mountain Laboratories, Harbin Institute of Technology, Xidian University Hangzhou Institute, Nanjing University of Posts and Telecommunications, and Xi’an University of Posts and Telecommunications.

Awards and Honours

Fellow of the Institute of Electrical and Electronic Engineers (IEEE)

Fellow of the Optical Society of America (OSA)

First Prize of Science and Technology Progress Award, Chinese Optical Engineering Society

First Prize of Science and Technology Progress Award, Jiangsu Province

First Prize of Science and Technology Progress Award, Chinese Institute of Electronics

Second Prize of Natural Science Award, Ministry of Education

Changjiang Distinguished Professor, Ministry of Education

National Science Fund for Distinguished Young Scholars

National Distinguished Expert (Special Appointment)

National Outstanding Doctoral Dissertation Award

Education and Work Experience

Overseas Work Experience (over 20 years):

Postdoctoral Fellow, Assistant Research Professor, Technical University of Denmark

Researcher, Bell Labs, USA

Research Scientist, Georgia Institute of Technology, USA

Senior Researcher, NEC USA Research Centre

VP (ZTE USA) and Chief Scientist for High-Speed Optical Fibre Communication Technology, ZTE

Education:

Sept. 1986 – Jul. 1990: B.Sc., Modern Optics, Xiangtan University

Sept. 1993 – Apr. 1996: M.Sc., Optics, Beijing University of Posts and Telecommunications

May 1996 – Apr. 1999: Ph.D., Electromagnetic Fields and Microwave Technology, Beijing University of Posts and Telecommunications

Teaching

Digital Signal Processing Techniques in Optical Communication Systems

Nonlinear Fibre Optics

Selected Publications

一)部分 papers(A total of1000+ papers papers)

Google scholar连接点: https://scholar.google.com/citations?user=7X9cWBYAAAAJ&hl=zh-CN

1.1) 近 3 年in高速光纤通信领域Published papers

1) Jianjun Yu and Ying Wu, High-Speed Optical Fiber Communication in China, ACS Photonics Article ASAP, DOI: 10.1021/acsphotonics.2c01480

2) C. Wang et al., "Beyond 200 Gbit/s/λ VSB PS-PAM8 Employing Joint Neural Network Equalization at C-band," in IEEE Photonics Technology Letters, vol. 34, no. 18, pp. 941-944, 15 Sept.15, 2022, doi: 10.1109/LPT.2022.3195270.

3) Bohan Sang, Wen Zhou, Yuxuan Tan, Miao Kong, Chen Wang, Mingxu Wang, Li Zhao, Jiao Zhang, and Jianjun Yu, "Low Complexity Neural Network Equalization Based on Multi-Symbol Output Technique for 200+ Gbps IM/DD Short Reach Optical System," J. Lightwave Technol. 40, 2890-2900 (2022)

4) Ze Dong, Jianjun Yu, Yifan Chen, Fan Li, and Xiangjun Xin, "Symbol division multiplexing in optical fiber communication systems," Opt. Express 30, 14998-15007 (2022)

5) M. Kong et al., "800-Gb/s/carrier WDM Coherent Transmission Over 2000 km Based on Truncated PS-64QAM Utilizing MIMO Volterra Equalizer," in Journal of Lightwave Technology, vol. 40, no. 9, pp. 2830-2839, 1 May1, 2022, doi: 10.1109/JLT.2022.3148336.

6) B. Sang et al., "Multi-Symbol Output Long Short-Term Memory Neural Network Equalizer For 200+ Gbps IM/DD System," 2021 European Conference on Optical Communication (ECOC), 2021, pp. 1-4, doi: 10.1109/ECOC52684.2021.9606010.

7) M. Kong et al., "645-Gbit/s/carrier PS-16QAM WDM Coherent Transmission over 6,800 km Using Modified LSTM Nonlinear Equalizer," 2021 European Conference on Optical Communication (ECOC), 2021, pp. 1-4, doi: 10.1109/ECOC52684.2021.9605953.

8) J. Ding et al., "High Spectral Efficiency WDM Transmission Based on Hybrid Probabilistically and Geometrically Shaped 256QAM," in Journal of Lightwave Technology, vol. 39, no. 17, pp. 5494-5501, 1 Sept.1, 2021, doi: 10.1109/JLT.2021.3087919.

9) J. Zhang et al., "Demonstration of Single-Lane 350-Gb/s PS-PAM-16 in the C-band using single-DAC for Data Center Interconnects," 2021 Optical Fiber Communications Conference and Exhibition (OFC), 2021, pp. 1-3.

10) J. Zhang, M. Zhu, K. Wang, Q. Zhou, B. Hua, Y. Cai, M. Lei, Y. Zou, A. Li, W. Xu, J. Wang, X. Liu, and J. Yu, "The Best Modulation Format for Symmetrical Single-wavelength 50-Gb/s PON at O-band: PAM, CAP or DMT?," in Optical Fiber Communication Conference (OFC) 2021, P. Dong, J. Kani, C. Xie, R. Casellas, C. Cole, and M. Li, eds., OSA Technical Digest (Optica Publishing Group, 2021), paper W1H.3.

11) M. Kong, C. Liu, B. Sang, K. Wang, J. Ding, J. Shi, L. Zhao, W. Zhou, X. Xin, B. Liu, B. Ye, W. Chen, and J. Yu, "Demonstration of 800-Gbit/s/carrier TPS-64QAM WDM Transmission over 2,000 km Using MIMO Volterra Equalization," in Optical Fiber Communication Conference (OFC) 2021, P. Dong, J. Kani, C. Xie, R. Casellas, C. Cole, and M. Li, eds., OSA Technical Digest (Optica Publishing Group, 2021), paper W1I.4.

12) Yiran Wei, Cuiwei Liu, Bohan Sang, Bing Ye, Feng Zhao, and Jianjun Yu, "Demonstration of 200 Gbit/s Single λ Dual Band DMT Transmission With a SE of 6.29 bit/s/Hz," J. Lightwave Technol. 39, 2754-2761 (2021)

13) B. Zhu, F. Wang and J. Yu, "A Chaotic Encryption Scheme in DMT for IM/DD Intra-Datacenter Interconnects," in IEEE Photonics Technology Letters, vol. 33, no. 8, pp. 383-386, 15 April15, 2021, doi: 10.1109/LPT.2021.3064582.

14) J. Ding et al., "Transmission of Hybrid Probabilistically and Geometrically Shaped 256QAM at 49-Gbaud in a 50-GHz Spacing WDM System," 2020 European Conference on Optical Communications (ECOC), 2020, pp. 1-4, doi: 10.1109/ECOC48923.2020.9333281.

15) M. Kong et al., "640-Gbps/Carrier WDM Transmission over 6,400 km Based on PS-16QAM at 106 Gbaud Employing Advanced DSP," in Journal of Lightwave Technology, vol. 39, no. 1, pp. 55-63, 1 Jan.1, 2021, doi: 10.1109/JLT.2020.3024771.

16) Yiran Wei, Yinjun Zhou, Cuiwei Liu, Kaihui Wang, Jiao Zhang, Feng Wang, Junjie Ding, and Jianjun Yu, "SSB Single Carrier and Multicarrier in C-Band FSO Transmission With KK Receiver," J. Lightwave Technol. 38, 5000-5007 (2020)

17) F. Wang, B. Zhu, K. Wang, M. Zhao, L. Zhao and J. Yu, "Physical Layer Encryption in DMT Based on Digital Multi-Scroll Chaotic System," in IEEE Photonics Technology Letters, vol. 32, no. 20, pp. 1303-1306, 15 Oct.15, 2020, doi: 10.1109/LPT.2020.3021797.

18) K. Wang, M. Kong, W. Zhou, J. Ding and J. Yu, "200-Gbit/s PAM4 Generation by a Dual-Polarization Mach-Zehnder Modulator Without DAC," in IEEE Photonics Technology Letters, vol. 32, no. 18, pp. 1223-1226, 15 Sept.15, 2020, doi: 10.1109/LPT.2020.3

19) K. Wang, M. Zhao, M. Kong and J. Yu, "Demonstration of 4 × 100 Gbit/s PAM-4 Transmission Over 40 km in an IM/DD System Based on Narrow Band DMLs," in IEEE Photonics Journal, vol. 12, no. 3, pp. 1-8, June 2020, Art no. 7201908, doi: 10.1109/JPHOT.2020.2993670.017535.

20) J. Zhang et al., "280 Gb/s IM/DD PS-PAM-8 Transmission over 10 km SSMF at O-Band for Optical Interconnects," 2020 Optical Fiber Communications Conference and Exhibition (OFC), 2020, pp. 1-3.

21) K. Wang, J. Zhang, M. Zhao, W. Zhou, L. Zhao, J. Xiao, F. Zhao, Y. Zhang, B. Liu, X. Xin, Z. Dong, and J. Yu, "Demonstration of SOA-based IM/DD 1T (280Gbit/s×4) PS-PAM8 Transmission over 40km SSMF at O-band," in Optical Fiber Communication Conference (OFC) 2020, OSA Technical Digest (Optica Publishing Group, 2020), paper Th3K.3.

22) K. Wang, J. Zhang, Y. Wei, L. Zhao, W. Zhou, M. Zhao, J. Xiao, X. Pan, B. Liu, X. Xin, L. Zhang, Y. Zhang, and J. Yu, "100-Gbit/s/λ PAM-4 signal transmission over 80-km SSMF based on an 18-GHz EML at O-band," in Optical Fiber Communication Conference (OFC) 2020, OSA Technical Digest (Optica Publishing Group, 2020), paper Th1D.5.

23) J. Zhang, K. Wang, Y. Wei, L. Zhao, W. Zhou, J. Xiao, B. Liu, X. Xin, and J. Yu, "Symmetrical 50-Gb/s/λ PAM-4 TDM-PON at O-band Supporting 26 dB+ Loss Budget using Low-bandwidth Optics and Semiconductor Optical Amplifier," in Optical Fiber Communication Conference (OFC) 2020, OSA Technical Digest (Optica Publishing Group, 2020), paper Th1B.3.

24) Y. Wei, Y. Zhou, C. Liu, F. Wang, K. Wang, J. Shi, N. Chi, and J. Yu, "C-band PS 4096QAM OFDM FSO Transmission with 6.98bit/s/Hz Net SE Based on Kramers-Kronig Detection," in Optical Fiber Communication Conference (OFC) 2020, OSA Technical Digest (Optica Publishing Group, 2020), paper W1G.5.

25) K. Wang, J. Zhang, M. Zhao, W. Zhou, L. Zhao and J. Yu, "High-Speed PS-PAM8 Transmission in a Four-Lane IM/DD System Using SOA at O-Band for 800G DCI," in IEEE Photonics Technology Letters, vol. 32, no. 6, pp. 293-296, 15 March15, 2020, doi: 10.1109/LPT.2020.2971648.

26) Jiao Zhang, Jianjun Yu, Jun Shan Wey, Xinying Li, Li Zhao, Kaihui Wang, Miao Kong, Wen Zhou, Jiangnan Xiao, Xiangjun Xin, and Feng Zhao, "SOA Pre-Amplified 100 Gb/s/λ PAM-4 TDM-PON Downstream Transmission Using 10 Gbps O-Band Transmitters," J. Lightwave Technol. 38, 185-193 (2020)

27) Jiao Zhang, Jianjun Yu, Xinying Li, Kaihui Wang, Wen Zhou, Jiangnan Xiao, Li Zhao, Xiaolong Pan, Bo Liu, and Xiangjun Xin, "200 Gbit/s/λ PDM-PAM-4 PON system based on intensity modulation and coherent detection," J. Opt. Commun. Netw. 12, A1-A8 (2020)

1.2) in毫米波通信领域发表Representative papers

1) K. Wang, et al., "Complex-Valued 2D-CNN Equalization for OFDM Signals in a Photonics-Aided MMW Communication System at the D-Band," J. Lightwave Technol. 40, 2791-2798 (2022)

2) K. Wang, et al., "Bi-Directional OFDM Truncated PS-4096QAM Signals Transmission in a Full-Duplex MMW-RoF System at E-Band," J. Lightwave Technol. 39, 3412-3419 (2021)

3) X Li, J Yu, GK Chang, Photonics-aided millimeter-wave technologies for extreme mobile broadband communications in 5G ,Journal of Lightwave Technology 38 (2), 366-378 (2019)

4) X Li, J Yu, L Zhao, K Wang, C Wang, M Zhao, W Zhou, J Xiao, 1-Tb/s millimeter-wave signal wireless delivery at D-band , Journal of Lightwave Technology 37 (1), 196-204(2019)

5) J Yu, X Li, W Zhou, Tutorial: Broadband fiber-wireless integration for 5G+ communication , APL Photonics 3 (11), 111101 (2019)

6) X Li, J Yu, K Wang, Y Xu, L Chen, L Zhao, W Zhou, Delivery of 54-Gb/s 8QAM W-band signal and 32-Gb/s 16QAM K-band signal over 20-km SMF-28 and 2500-m wireless distance , Journal of Lightwave Technology 36 (1), 50-56 (2018)

7) J Yu, Photonics-assisted millimeter-wave wireless communication , IEEE Journal of Quantum Electronics 53 (6), 1-17(2017)

8) X Li, J Xiao, J Yu, Long-distance wireless mm-wave signal delivery at W-band , Journal of Lightwave Technology 34 (2), 661-668(2016)

9) X Li, J Yu, J Xiao, Demonstration of ultra-capacity wireless signal delivery at W-band , Journal of Lightwave Technology 34 (1), 180-187(2016)

10) J Xiao, J Yu, X Li, Y Xu, Z Zhang, L Chen, 40-Gb/s PDM-QPSK signal transmission over 160-m wireless distance at W-band , Optics Letters 40 (6), 998-1001(2015)

11) X. Li, et al., Field Trial of 80-Gb/s PDM-QPSK Signal Delivery over 300-m Wireless Distance with MIMO and Antenna Polarization Multiplexing at W-Band , OFC 2015, Post Deadline Paper, Th5A.5 ( 2015 )

12) J Yu, X Li, J Zhang, J Xiao, 432-Gb/s PDM-16QAM signal wireless delivery at W-band using optical and antenna polarization multiplexing ,2014 The European Conference on Optical Communication (ECOC), 1-3 ( 2014 )

13) W . Li, et al., Photonics-Aided THz-Wireless Transmission over 4.6 km Free Space by Plano-Convex Lenses , 2022 The European Conference on Optical Communication (ECOC), 1-3 ( 2022 )

14) W . Li, et al., 127.8 Gb/s OFDM-PDM-PS256QAM W-Band Signal Delivery over 10 km SMF-28 and 4.6 km Wireless Distance , 2022 The European Conference on Optical Communication (ECOC), 1-3 ( 2022 )

15) W . Li, et al., 47.45 Gb/s OFDM-PS-256QAM Signal Delivery over 4.6 kilometers Wireless Distance at W-Band, Optics Letters 47 (16) (2022) optics

16) W . Li, et al., Delivery of 103.2 Gb/s 4096QAM signal over 180m wireless distance at D-band Enabled by Truncated Probabilistic Shaping and MIMO Volterra Compensation[C]//Optical Fiber Communication Conference. Optica Publishing Group, 2022: M1C. 4.

17) B Zhu, et al. Delivery of 40 Gbit/s W-band signal over 4600 m wireless distance employing advanced digital signal processing[J]. Chinese Optics Letters, 2022, 20(10): 103901.

18) B Zhu, et al. 40-Gbit/s W-band Signal Delivery over 4600-m Wireless Distance Employing Advanced DSPs[C]//2022 IEEE International Conference on Communications Workshops (ICC Workshops). IEEE, 2022: 904-909.

19) F. Wang et al ., "Delivery of Polarization-Division-Multiplexing Wireless Millimeter-Wave Signal Over 4.6-km at W-Band," in Journal of Lightwave Technology , vol. 40, no. 19, pp. 6339-6346, 1 Oct.1, 2022, doi: 10.1109/JLT.2022.3195542.

20) F. Wang et al ., "Echo State Network based Nonlinear Equalization for 4.6 km 135 GHz D-band Wireless Transmission," in Journal of Lightwave Technology , 2022, doi: 10.1109/JLT.2022.3220570.

21) Wang, M.; Wang, Y.; Li, W.; Ding, J.; Bian, C.; Wang, X.; Wang, C.; Li, C.; Zhong, Z.; Yu, J. Reflection Characteristics Measurements of Indoor Wireless Link in D-Band. Sensors 2022 , 22 , 6908. https://doi.org/10.3390/s22186908.

22) L. Zhao et al., "Transmission of 1024-QAM OFDM at 28 GHz Radio Frequency Using 5G Millimeter Wave Phased Array Antenna," in IEEE Transactions on Microwave Theory and Techniques, vol. 70, no. 9, pp. 4211-4217, Sept. 2022, doi: 10.1109/TMTT.2022.3189045.

1.3) in太赫兹领域发表Representative papers

[1] X. Li et al., “Photonics-aided 2 × 2 MIMO wireless terahertz-wave signal transmission system with optical polarization multiplexing,” Optics Express, vol. 25, no. 21, pp. 33236-33242, 2017.

[2] K. Wang, X. Li, M. Kong, P. Gou, W. Zhou, and J. Yu, "Probabilistically Shaped 16QAM Signal Transmission in a Photonics-aided Wireless Terahertz-Wave System," in OFC , 2018, paper M4J.7.

[3] C. Wang, J. Yu, X. Li, P. Gou and W. Zhou, "Fiber-THz-Fiber Link for THz Signal Transmission," in IEEE Photonics Journal, vol. 10, no. 2, pp. 1-6, April 2018, Art no. 7200706, doi: 10.1109/JPHOT.2018.2809433.

[4] X. Li et al., “120 Gb/s Wireless Terahertz-Wave Signal Delivery by 375 GHz-500 GHz Multi-Carrier in a 2 × 2 MIMO System,” in Journal of Lightwave Technology, vol. 37, no. 2, pp. 606-611, 15 Jan.15, 2019, doi: 10.1109/JLT.2018.2862356.

[5] M. Zhao, W. Zhou and J. Yu, “ 3.5 Gbit/s OOK THz signal delivery over 88 cm free‐space at 441.504 GHz ,” Microwave and Optical Technology Letters 60 (6), 1435-1439.

[6] J. Yu and W. Zhou, "Optimization of lens layout for THz signal free-space delivery", Opt. Commun., vol. 410, pp. 443-446, Mar. 1, 2018.

[7] 赵明明 , Yu Jianjun . 太赫兹通信系统 研究现状and应用展望 [J]. 太赫兹scienceand电子信息学报 , 2018, 16(06):4-10.

[8] C. Wang, W. Zhou, J. Yu, 392 GHz THz vector signal generation based on ISB and multi-frequency signal generation using cascaded phase modulator and I/Q modulator[J]. Optics Communications, 2019, 452: 181-184.

[9] X. Li et al., “132- Gb/s photonics-aided single-carrier wireless Terahertzwave signal transmission at 450GHz enabled by 64qam modulation and probabilistic shaping,” OFC 2019, pp. M4F–4.

[10] Z . Hui, X. Yang, D. Han, F. Zhao, J. Gong, L. Gao, J. Yu, Sector-type high birefringence hollow-core anti-resonant terahertz photonic crystal fiber with low loss, Optical Fiber Technology, Volume 67, 2021,102728.

[11] J. Yu, Y. Wei. Digital Signal Processing for High-Speed THz Communications [J]. Chinese Journal of Electronics. doi: 10.1049/cje.2021.00.258

[12] W. Li et al., “54/104 meters Terahertz wireless delivery of 124.8/44.8 Gbit/s Signals without Terahertz Amplifier,” ACP, 2021, post deadline paper T4D.8.

[13] Y. Wang et al., “Integrated Terahertz High-Speed Data Communication and High-Resolution Radar Sensing System Based-on Photonics,” 2021 European Conference on Optical Communication (ECOC), 2021, pp. 1-4, doi: 10.1109/ECOC52684.2021.9606102.

[14] J. Ding et al., “Demonstration of 352-Gbit/s Single Line Rate PS-4096QAM THz Wired Transmission over Hollow-Core Fiber,” OECC 2021, post deadline T5A.1.

[15] J. Ding et al., “104-m Terahertz-Wave Wireless Transmission Employing 124.8-Gbit/s PS-256QAM Signal” in OFC, 2022, pp. M3C–3.

[16] J. Zhang et al., "6G Oriented 100 GbE Real-time Demonstration of Fiber-THz-Fiber Seamless Communication Enabled by Photonics," OFC 2022, pp. 1-3.

[17] J. Zhang et al., “Real-time demonstration of 103.125-Gbps fiber–THz–fiber 2 × 2 MIMO transparent transmission at 360–430 GHz based on photonics,” Optics Letter, vol. 47, pp. 1214-1217, 2022.

[18] F. Wang et al., “Implementation of Digital Chaotic Encryption in THz Wireless Communication” in OFC , 2022, pp. M3C–4.

[19] Y. Wang et al., “Integrated 1.58 cm range Resolution Radar and 60 Gbit/s 50m Wireless Communication Based-on Photonics technology in Terahertz Band” in OFC, 2022, pp. Th3G–4.

[20] C. Wang et al., "High-Speed Terahertz Band Radio-Over-Fiber System Using Hybrid Time-Frequency Domain Equalization," in IEEE Photonics Technology Letters, vol. 34, no. 11, pp. 559-562, 1 June1, 2022, doi: 10.1109/LPT.2022.3171776.

[21] Zhu M, Zhang J, Yu J J, et al. Demonstration of record-high 352-Gbps terahertz wired transmission over hollow-core fiber at 325 GHz. Sci China Inf Sci, 2022, 65(2): 127301, https://doi.org/10.1007/s11432-021-3361-5

[23] Y. Tan et al., "Transmission of High-Frequency Terahertz Band Signal Beyond 300 GHz Over Metallic Hollow Core Fiber," in Journal of Lightwave Technology, vol. 40, no. 3, pp. 700-707, 1 Feb.1, 2022, doi: 10.1109/JLT.2021.3123473.

[24] J. Ding et al., "352-Gbit/s single line rate THz wired transmission based on PS-4096QAM employing hollow-core fiber," Digital Communications and Networks, (to be pulished).

[25] J. Ding et al., "124.8-Gbit/s PS-256QAM Signal Wireless Delivery over 104 m in a Photonics-aided Terahertz-Wave System," IEEE Transactions on Terahertz Science and Technology, vol. 12, no. 4, pp. 409-414, 2022., doi: 10.1109/TTHZ.2022.3164356.

[26] J. Ding et al., "THz-over-fiber transmission with a net rate of 5.12 Tbps in an 80 channel WDM system," Optics Letters, vol. 47, no. 12, pp. 3103-3106, 2022.

[27] J. Ding et al., "200-m PS-64QAM THz-wave signal wireless transmission utilizing likelihood-based selection radius-directed equalizer," Optics Letters, 2022, doi: 10.1364/OL.465696 .

[28] J. Ding et al., ", "Demonstration of 32-Gbit/s terahertz-wave signal transmission over 400-m wireless distance," 2022 European Conference on Optical Communications (ECOC), 2022, We2F.2.

[29] J. Ding et al., ", "Demonstration of 6.4-Tbit/s THz-wave signal transmission over 20-km wired and 54-m wireless distance," 2022 European Conference on Optical Communications (ECOC), 2022, Mo3C.3.

[30] W. Li et al., "104 meters Photonics-aided Terahertz Wireless Transmission without Terahertz Amplifier," in IEEE Photonics Technology Letters, 2022, doi: 10.1109/LPT.2022.3185302.

[32] Yanyi Wang, Weiping Li, Junjie Ding, Jiao Zhang, Min Zhu, Feng Zhao, Mingxu Wang, and Jianjun Yu, "Integrated High-Resolution Radar and Long-Distance Communication Based-on Photonic in Terahertz Band," J. Lightwave Technol. 40, 2731-2738 (2022).

[33] Li, W., Yu, J., Zhu, B. et al. Photonics-aided THz-wireless transmission over 400 m at 335 GHz. Sci. China Technol. Sci. 65 , 3082–3084 (2022). https://doi.org/10.1007/s11431-022-2225-8.

【34】 LI Wei-ping, WANG Kai-hui, SANG Bo-han, YU Jian-jun. Two Channel WDM Wireless and Optical Integration THz Transmission System[J]. Acta Electronica Sinica, 2022, 50(10): 2311-2317.

[35] B. Zhu, Y. Wang, M. Kong, J. Zhang, M. Zhu and J. Yu, "Photonics-Aided Terahertz-Wave Wireless Communication Employing Advanced Post-Equalizer," in IEEE Photonics Technology Letters , vol. 34, no. 23, pp. 1269-1272, 1 Dec.1, 2022, doi: 10.1109/LPT.2022.3211429.

[36] J. Zhang et al ., "Real-time Demonstration of 100 GbE THz-wireless and Fiber Seamless Integration Networks," in Journal of Lightwave Technology , 2022, doi: 10.1109/JLT.2022.3204268.

[37] Zhu, M., Zhang, J., Hua, B. et al. Ultra-wideband fiber-THz-fiber seamless integration communication system toward 6G: architecture, key techniques, and testbed implementation. Sci. China Inf. Sci. 66 , 113301 (2023). https://doi.org/10.1007/s11432-022-3565-3.

[38] Feng Zhao, Xiongwei Yang, Li Zhao, Yi Wei, and Jianjun Yu, "Demonstration of 4096QAM THz MIMO wireless delivery employing one-bit delta-sigma modulation," Opt. Lett. 47 , 6361-6364 (2022 ).

1.4) inOFC以Post Deadline Paper方式发表 papers

1. L. Zhang, K. Wang, Z. Zhu, X. Yang, J. Liu, B. Sang, J. Tan, M. Chen, L. Zhao, W. Zhou, and J. Yu , "Real-time Demonstration of Photonics-assisted W-band 23 Gbps PS-64QAM DMT Signals over 40.5-m Wireless Based on FPGA," in Optical Fiber Communication Conference (OFC) 2024 , Technical Digest Series (Optica Publishing Group, 2024), paper Th4B.3.

2. W. Li, J. Yu , B. Zhu, J. Zhang, M. Zhu, F. Zhao, T. Xie, K. Wang, Y. Wei, X. Yang, B. Hua, M. Lei, Y. Cai, W. Zhou, and J. Yu, "Photonics-assisted 320 GHz THz-band 50 Gbit/s Signal Outdoor Wireless Communication over 850 Meters," in Optical Fiber Communication Conference (OFC) 2023 , Technical Digest Series (Optica Publishing Group, 2023), paper Th4C.5.

3. J. Zhang, J. Yu , H. Chien, J. S. Wey, M. Kong, X. Xin, and Y. Zhang, "Demonstration of 100-Gb/s/λ PAM-4 TDM-PON Supporting 29-dB Power Budget with 50-km Reach Using 10G-class O-band DML Transmitters," in Optical Fiber Communication Conference Postdeadline Papers 2019 , (Optica Publishing Group, 2019), paper Th4C.3.

4. X. Li, J. Yu , L. Zhao, K. Wang, W. Zhou, and J. Xiao, "1-Tb/s Photonics-aided Vector Millimeter-Wave Signal Wireless Delivery at D-Band," in Optical Fiber Communication Conference Postdeadline Papers , OSA Technical Digest (online) (Optica Publishing Group, 2018), paper Th4D.1.

5. X. Li, J. Yu , K. Wang, Y. Xu, L. Chen, L. Zhao, and W. Zhou, "Bidirectional Delivery of 54-Gbps 8QAM W-Band Signal and 32-Gbps 16QAM K-Band Signal over 20-km SMF-28 and 2500-m Wireless Distance," in Optical Fiber Communication Conference Postdeadline Papers , OSA Technical Digest (online) (Optica Publishing Group, 2017), paper Th5A.7.

6. X. Li, J. Yu , J. Xiao, Z. Zhang, Y. Xu, and L. Chen, "Field Trial of 80-Gb/s PDM-QPSK Signal Delivery over 300-m Wireless Distance with MIMO and Antenna Polarization Multiplexing at W-Band," in Optical Fiber Communication Conference Post Deadline Papers , OSA Technical Digest (online) (Optica Publishing Group, 2015), paper Th5A.5.

7. J. Zhang, J. Yu , Z. Dong, Z. Jia, H. C. Chien, Y. Cai, C. Ge, S. Shi, Y. Chen, H. Wang, and Y. Xia, "Transmission of 20×440-Gb/s Super-Nyquist-Filtered Signals over 3600 km based on Single-Carrier 110-GBaud PDM QPSK with 100-GHz Grid," in Optical Fiber Communication Conference: Postdeadline Papers , (Optica Publishing Group, 2014), paper Th5B.3.

8. X. Xiao, F. Li, J. Yu , X. Li, Y. Xia, and F. Chen, "100-Gb/s Single-band Real-time Coherent Optical DP-16QAM-OFDM Transmission and Reception," in Optical Fiber Communication Conference: Postdeadline Papers , (Optica Publishing Group, 2014), paper Th5C.6.

9. J. Yu , Z. Dong, H. Chien, Z. Jia, D. Huo, H. Yi, M. Li, Z. Ren, N. Lu, L. Xie, K. Liu, X. Zhang, Y. Xia, Y. Cai, M. Gunkel, P. Wagner, H. Mayer, and A. Schippel, "Field Trial Nyquist-WDM Transmission of 8#x000D7;216.4Gb/s PDM-CSRZ-QPSK Exceeding 4b/s/Hz Spectral Efficiency," in Optical Fiber Communication Conference , OSA Technical Digest (Optica Publishing Group, 2012), paper PDP5D.3.

10. J. Yu , Z. Dong, X. Xiao, Y. Xia, S. Shi, C. Ge, W. Zhou, N. Chi, and Y. Shao, "Generation, Transmission and Coherent Detection of 11.2 Tb/s (112×100Gb/s) Single Source Optical OFDM Superchannel," in Optical Fiber Communication Conference/National Fiber Optic Engineers Conference 2011 , OSA Technical Digest (CD) (Optica Publishing Group, 2011), paper PDPA6.

11. X. Zhou, J. Yu , M. Huang, Y. Shao, T. Wang, L. Nelson, P. Magill, M. Birk, P. I. Borel, D. W. Peckham, and R. Lingle, "64-Tb/s (640×107-Gb/s) PDM-36QAM transmission over 320km using both pre- and post-transmission digital equalization," in Optical Fiber Communication Conference , OSA Technical Digest (CD) (Optica Publishing Group, 2010), paper PDPB9.

12. X. Zhou, J. Yu , M. Huang, Y. Shao, T. Wang, P. Magill, M. Cvijetic, L. Nelson, M. Birk, G. Zhang, S. Ten, H. B. Matthew, and S. K. Mishra, "32Tb/s (320×114Gb/s) PDM-RZ-8QAM transmission over 580km of SMF-28 ultra-low-loss fiber," in Optical Fiber Communication Conference and National Fiber Optic Engineers Conference , OSA Technical Digest (CD) (Optica Publishing Group, 2009), paper PDPB4.

13. X. Zhou, J. Yu , D. Qian, T. Wang, G. Zhang, and P. D. Magill, "8×114 Gb/s, 25-GHz-spaced, PolMux-RZ-8PSK transmission over 640 km of SSMF employing digital coherent detection and EDFA-only amplification," in Optical Fiber Communication Conference/National Fiber Optic Engineers Conference , OSA Technical Digest (CD) (Optica Publishing Group, 2008), paper PDP1.

14. J. Yu , M. Huang, P. N. Ji, and T. Wang, "42.8 Gb/s Chirp-Managed Signal Transmission Over 100 m Graded-Index Plastic Optical Fiber," in Optical Fiber Communication Conference/National Fiber Optic Engineers Conference , OSA Technical Digest (CD) (Optica Publishing Group, 2008), paper PDP28.

15. G. Chang and J. Yu , "Multi-rate payload switching using a swappable optical carrier suppressed label in a packet switched DWDM optical network," in Optical Fiber Communication Conference , Technical Digest (CD) (Optica Publishing Group, 2004), paper PD5.

二)专著

1 ) Yu Jianjun、Chi Nan、陈林, Based on数字Signal Processing 相干光通信技术 (, editor) , 邮电Press,2013;

2)Yu Jianjun、Chi Nan,高速光纤通信中数字Signal Processing算法原理and应用 : 第一Vol. :I: 单载波调制技术 (著) , Tsinghua University Press,2017;

3)Yu Jianjun、Chi Nan 高速光纤通信中数字Signal Processing算法原理and应用(第二Vol.):+载波调制和人工智能新技术 (著) , Tsinghua University Press,2018;

4) Yu Jianjun, 光子辅助 毫米波通信技术 , Science Press (著) ,2018 ;

5) Yu Jianjun, 宽带太赫兹通信技术,Tsinghua University Press (著) ,2020;

6) Yu Jianjun 、Chi Nan,Based on数字Signal Processing 光纤通信技术(第一Vol.):单载波信号传输, Tsinghua University Press (著) , 202 1 年;

7) Yu Jianjun、Chi Nan,Based on数字Signal Processing 光纤通信技术(第二Vol.): +载波调制和人工智能新技术 , Tsinghua University Press (著) , 202 1 年;

8)Yu Jianjun, Xinying Li, Junwen Zhang, Digital Signal Processing for High-speed Optical Communication,World Scientific Publishing Company (著) ,2017;

9) Yu Jianjun, Chi Nan, Digital Signal Processing in High-speed optical fiber communication principle and application, Springer (著) ,2020;

10) Yu Jianjun , Broadband Terahertz Communication Technologies (著) , Springer and Tsinghua University press, 2021 ;

11) Yu Jianjun ,张教,李凡, 高速光互连和宽带光接入技术 (著) , Posts and Telecom Press,2024