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InP DHBT 200-GSa/s Large Output Swing AMUX-Driver Using Transimpedance Stage Loading for 200-Gbaud-and-Beyond Optical Transceivers
Author(s) -
Romain Hersent,
Agnieszka Konczykowska,
Virginie Nodjiadjim,
Nil Davy,
Muriel Riet,
Colin Mismer,
Filipe Jorge,
Fabrice Blache,
Michel Goix,
Qian Hu,
Marina Deng,
Chhandak Mukherjee,
Cristell Maneux,
Mengyue Xu,
Yuntao Zhu,
Lifeng Chen,
Ziyang Hu,
Xinlun Cai,
Haik Mardoyan,
Jeremie Renaudier,
Bertrand Ardouin
Publication year - 2025
Publication title -
ieee transactions on microwave theory and techniques
Language(s) - English
Resource type - Magazines
SCImago Journal Rank - 1.372
H-Index - 190
eISSN - 1557-9670
pISSN - 0018-9480
DOI - 10.1109/tmtt.2025.3569647
Subject(s) - fields, waves and electromagnetics
In this article, we report on the design and characterization of InP-DHBT analog multiplexer (AMUX)-driver integrated circuits (ICs) for next generation $\geq 200$ Gbaud (GBd) metro/long-haul optical transceivers. We show that the transimpedance stage (TIS) loading of the AMUX selecting cell provides superior gain $\times $ bandwidth and linearity performances with respect to the commonly used resistive and cascode loads. Moreover, the driving clock amplitude and tail current of the selecting core are shown to be key parameters for the AMUX-driver design. The AMUX-drivers with TIS loading are fabricated in the III-V Lab’s InP DHBT process, showing up to 200-GSa/s sampling rate, without any support of DSP. At 100 GSa/s and 2.4 Vppd of PAM-4 output swing, the highest AMUX FoM is obtained. To the best of the authors’ knowledge, these are the highest performances reported to date for an AMUX(-driver). Additionally, an AMUX-driver chip is assembled with a TFLN modulator, demonstrating an E/O bandwidth in excess of 85 GHz, while supporting the generation of 100-GBd PAM-4 optical signals, without DSP or active cooling.

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