Packaging Design and Characterization of a 16-Channel Silicon Photonic Transmitter Module for a 1.6 Tb/s-Class Optical Engine

The increasing bandwidth demand of artificial-intelligence computing and data-center interconnects has driven silicon photonic optical engines toward higher capacity, compact packaging, and improved scalability. This work presents the packaging design and characterization of a completed 16-channel silicon photonic transmitter module for a 1.6 Tb/s-class optical engine. The module integrates an IMEC-fabricated silicon photonic chip, fiber-array edge-coupling interfaces, wire-bond submounts, PAM4 driver circuits, per-channel MZM heaters, and module-level thermoelectric cooling. A custom submount reduced the highly nonuniform wire-bond distance of 255.98–1788.48 μm to approximately 275.26 μm and provided a simulated packaged-path −3 dB bandwidth of approximately 32 GHz. Fiber-array monitor-port scans showed transverse alignment tolerances of approximately 4–6 μm; after accounting for the nominal 1% monitoring tap and a separately calibrated 4 dB grating-coupler-to-MMF path, the effective packaged input-coupling estimate at 1310 nm was approximately 3.77 dB. All 16 channels were independently verified at 53.125 GBaud PAM4, corresponding to 106.25 Gb/s per lane, and the completed module supports concurrent activation of all lanes. Because the Keysight N1000A optical sampling oscilloscope (Keysight Technologies, Inc., Santa Rosa, CA, USA) accepts one optical input at a time, the eye diagrams and metrics were acquired by sequentially selecting the observed channel and do not constitute a simultaneous 16-channel crosstalk measurement. Across the 16 channels, the measured optical power, OMA, ER, TDECQ, and RLM ranged from −0.09 to 0.30 dBm, 1.141 to 1.267 dBm, 3.037 to 3.055 dB, 3.09 to 3.18 dB, and 0.956 to 0.981, respectively. The measured module-level TEC power was 1.2 W. Using the same nominal 1.6 Tb/s data-rate denominator, the estimated energy consumption is 3.95 pJ/bit for the transmitter electronics excluding the external lasers and TEC and 7.83 pJ/bit when the external laser operating power and measured module-level TEC power are included. These results demonstrate a practical package-level proof of concept for scalable 1.6 Tb/s-class silicon photonic transmitters.

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Publication Details

Journal
Microelectronics
Published
2026-09-17
DOI
https://doi.org/10.3390/microelectronics2030014
Primary Topic
Photonic and Optical Devices
Type
article
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Packaging Design and Characterization of a 16-Channel Silicon Photonic Transmitter Module for a 1.6 Tb/s-Class Optical Engine

Fu-Hsiang Hsu, Chien-Wei Huang, Chun-Nien Liu, Wei‐Chih Cheng et al.
Microelectronics
Photonic and Optical Devices
article

Packaging Design and Characterization of a 16-Channel Silicon Photonic Transmitter Module for a 1.6 Tb/s-Class Optical Engine

Fu-Hsiang Hsu, Chien-Wei Huang, Chun-Nien Liu, Wei‐Chih Cheng, Chia‐Chin Chiang, Hong-Wei Huang
article en

Abstract

The increasing bandwidth demand of artificial-intelligence computing and data-center interconnects has driven silicon photonic optical engines toward higher capacity, compact packaging, and improved scalability. This work presents the packaging design and characterization of a completed 16-channel silicon photonic transmitter module for a 1.6 Tb/s-class optical engine. The module integrates an IMEC-fabricated silicon photonic chip, fiber-array edge-coupling interfaces, wire-bond submounts, PAM4 driver circuits, per-channel MZM heaters, and module-level thermoelectric cooling. A custom submount reduced the highly nonuniform wire-bond distance of 255.98–1788.48 μm to approximately 275.26 μm and provided a simulated packaged-path −3 dB bandwidth of approximately 32 GHz. Fiber-array monitor-port scans showed transverse alignment tolerances of approximately 4–6 μm; after accounting for the nominal 1% monitoring tap and a separately calibrated 4 dB grating-coupler-to-MMF path, the effective packaged input-coupling estimate at 1310 nm was approximately 3.77 dB. All 16 channels were independently verified at 53.125 GBaud PAM4, corresponding to 106.25 Gb/s per lane, and the completed module supports concurrent activation of all lanes. Because the Keysight N1000A optical sampling oscilloscope (Keysight Technologies, Inc., Santa Rosa, CA, USA) accepts one optical input at a time, the eye diagrams and metrics were acquired by sequentially selecting the observed channel and do not constitute a simultaneous 16-channel crosstalk measurement. Across the 16 channels, the measured optical power, OMA, ER, TDECQ, and RLM ranged from −0.09 to 0.30 dBm, 1.141 to 1.267 dBm, 3.037 to 3.055 dB, 3.09 to 3.18 dB, and 0.956 to 0.981, respectively. The measured module-level TEC power was 1.2 W. Using the same nominal 1.6 Tb/s data-rate denominator, the estimated energy consumption is 3.95 pJ/bit for the transmitter electronics excluding the external lasers and TEC and 7.83 pJ/bit when the external laser operating power and measured module-level TEC power are included. These results demonstrate a practical package-level proof of concept for scalable 1.6 Tb/s-class silicon photonic transmitters.

MicroelectronicsVol. 2(3)
National Chung Hsing University (TW), National Kaohsiung University of Science and Technology (TW)
Affordable and clean energy
Openalex Percentile: Top 20%
Photonic and Optical Devices
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