Study On Optical Communications, Volume. 50, Issue 5, 24003001(2024)
Board Level Signal Integrity Study of Ultra-High-Speed Optical Module for Data Centers
[1] Xie C, Magill P, Li D et al. Real-time Demonstration of Silicon-photonics-based QSFP-DD 400 G BASE-DR4 Transceivers for Datacenter Applications[C], 9083251(2020).
[2] Zhu H, Anderson S, Karfelt N et al. Low-cost 400 Gbps DR4 Silicon Photonics Transmitter for Short-reach Datacenter Application[J]. Nanomaterials, 11, 1941(2021).
[3] Porto S, Chitgarha M, Leung I et al. Demonstration of a 2×800 Gb/s/Wave Coherent Optical Engine based on an InP Monolithic PIC[J]. Journal of Lightwave Technology, 40, 664-671(2022).
[4] Li H, Luo L, Lu M Z et al. 800 Gbit/s QSFP-DD Transceiver based on Thin-film Lithium Niobate Photonic Integrated Circuit[J]. Journal of Lightwave Technology, 41, 3462-3469(2023).
[5] Zhou X, Urata R, Liu H. Beyond 1 Tb/s Intra-data Center Interconnect Technology: IM-DD or Coherent?[J]. Journal of Lightwave Technology, 38, 475-484(2020).
[6] Abrams N C, Cheng Q X, Glick M et al. Silicon Photonic 2.5D Multi-chip Module Transceiver for High-performance Data Centers[J]. Journal of Lightwave Technology, 38, 3346-3357(2020).
[7] Razdan S, De Dobbelaere P, Xue J et al. Advanced 2.5D and 3D Packaging Technologies for Next Generation Silicon Photonics in High Performance Networking Applications[C], 428-435(2022).
[8] Tauber D, Smith B, Lewis D et al. Role of Coherent Systems in the Next DCI Generation[J]. Journal of Lightwave Technology, 41, 1139-1151(2023).
[9] Su H H, Yan J C. The Optimum Design and Analysis of 10 Gbit/s High-speed Serial Channel[J]. Journal of Microwaves, 36, 12-17(2020).
[10] Yang B B, Li Z H, Liu F M et al. Signal Integrity Design for High Speed Pluggable Optical Transceiver[J]. Microelectronics, 44, 191-196(2014).
[11] Dong Z Z, Wu H R, Guo J et al. Simulation Research of High-speed Digital Circuit in Optical Transceiver[J]. Electronic Technology, 45, 4-6(2016).
[12] Sun Y, Li T J, Ai M Z et al. Design and Optimization of 14 Gbps High-speed Channel based on Simulation[J]. Computer Engineering & Science, 36, 1455-1461(2014).
[13] Ma P, Liu F, Zhao M et al. Signal Integrity Design for QSFP Interface Applicated in RF Optical Transmitter Module[C], 8480712(2018).
[14] Su H H, Huang J, He Q M. Signal Integrity Analysis for 10 Gbps Photoelectric Links based on Behavior Model[C], 9888617(2022).
[15] Lin S H. A 64 GBaud Dual Channel Differential Linear Trans-impedance Amplifier[J]. Study on Optical Communications, 57-63(2023).
[16] Patel D, Sharif-Bakhtiar A, Carusone T C. A 112-Gb/s—8.2-dBm Sensitivity 4-PAM Linear TIA in 16-nm CMOS with Co-packaged Photodiodes[J]. IEEE Journal of Solid-State Circuits, 58, 771-784(2023).
[17] Khairi A, Krupnik Y, Laufer A et al. A 1.41-pJ/b 224-Gb/s PAM4 6-bit ADC-based SerDes Receiver with Hybrid AFE Capable of Supporting Long Reach Channels[J]. IEEE Journal of Solid-State Circuits, 58, 8-18(2023).
[18] Luo X S, You X W, Li Z H et al. 7.5 a 224 Gb/s/Wire Single-ended PAM-4 Transceiver Front-end with 29 dB Equalization for 800 GbE/1.6 TbE[C], 10454534(2024).
Get Citation
Copy Citation Text
Guangcheng Zhong, Congbiao Lei, Yuxuan Jiang, Liang Xie. Board Level Signal Integrity Study of Ultra-High-Speed Optical Module for Data Centers[J]. Study On Optical Communications, 2024, 50(5): 24003001
Category:
Received: Feb. 7, 2024
Accepted: --
Published Online: Oct. 15, 2024
The Author Email: Xie Liang (xiel@semi.ac.cn)