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Efficient Heat Dissipation of Uncooled 400-Gbps (16×25-Gbps) Optical Transceiver Employing Multimode VCSEL and PD Arrays

An effective heat dissipation of uncooled 400-Gbps (16×25-Gbps) form-factor pluggable (CDFP) optical transceiver module employing chip-on-board multimode 25-Gbps vertical-surface-emitting-laser (VCSEL) and 25-Gbps photodiode (PD) arrays mounted on a brass metal core embedded within a printed circuit...

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Autores principales: Shih, Tien-Tsorng, Chi, Yu-Chieh, Wang, Ruei-Nian, Wu, Chao-Hsin, Huang, Jian-Jang, Jou, Jau-Ji, Lee, Tai-Cheng, Kuo, Hao-Chung, Lin, Gong-Ru, Cheng, Wood-Hi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5394546/
https://www.ncbi.nlm.nih.gov/pubmed/28417978
http://dx.doi.org/10.1038/srep46608
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author Shih, Tien-Tsorng
Chi, Yu-Chieh
Wang, Ruei-Nian
Wu, Chao-Hsin
Huang, Jian-Jang
Jou, Jau-Ji
Lee, Tai-Cheng
Kuo, Hao-Chung
Lin, Gong-Ru
Cheng, Wood-Hi
author_facet Shih, Tien-Tsorng
Chi, Yu-Chieh
Wang, Ruei-Nian
Wu, Chao-Hsin
Huang, Jian-Jang
Jou, Jau-Ji
Lee, Tai-Cheng
Kuo, Hao-Chung
Lin, Gong-Ru
Cheng, Wood-Hi
author_sort Shih, Tien-Tsorng
collection PubMed
description An effective heat dissipation of uncooled 400-Gbps (16×25-Gbps) form-factor pluggable (CDFP) optical transceiver module employing chip-on-board multimode 25-Gbps vertical-surface-emitting-laser (VCSEL) and 25-Gbps photodiode (PD) arrays mounted on a brass metal core embedded within a printed circuit board (PCB) is proposed and demonstrated. This new scheme of the hollow PCB filling with thermally-dissipated brass metal core was simulated and used for high temperature and long term stability operation of the proposed 400-Gbps CDFP transceiver. During one-hour testing, a red-shift of central wavelength by 0.4-nm corresponding temperature increment of 6.7 °C was observed with the brass core assisted cooler module. Such a temperature change was significantly lower than that of 28.3 °C for the optical transceiver driven with conventional circuit board. After 100-m distance transmission over a multimode fiber (OM4), the 400-Gbps CDFP transceiver exhibited dispersion penalty of 2.6-dB, power budget of ≧ 3-dB, link loss of ≦ 0.63-dB, mask margin of 20%, and bit error rate (BER) of <10(−12) with maintained stability more than one hour. The developed 400-Gbps CDFP transceiver module employing low-power consumption VCSEL and PD arrays, effective coupling lens arrays, and well thermal-dissipation brass metal core is suitable for use in the low-cost and high-performance data center applications.
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spelling pubmed-53945462017-04-20 Efficient Heat Dissipation of Uncooled 400-Gbps (16×25-Gbps) Optical Transceiver Employing Multimode VCSEL and PD Arrays Shih, Tien-Tsorng Chi, Yu-Chieh Wang, Ruei-Nian Wu, Chao-Hsin Huang, Jian-Jang Jou, Jau-Ji Lee, Tai-Cheng Kuo, Hao-Chung Lin, Gong-Ru Cheng, Wood-Hi Sci Rep Article An effective heat dissipation of uncooled 400-Gbps (16×25-Gbps) form-factor pluggable (CDFP) optical transceiver module employing chip-on-board multimode 25-Gbps vertical-surface-emitting-laser (VCSEL) and 25-Gbps photodiode (PD) arrays mounted on a brass metal core embedded within a printed circuit board (PCB) is proposed and demonstrated. This new scheme of the hollow PCB filling with thermally-dissipated brass metal core was simulated and used for high temperature and long term stability operation of the proposed 400-Gbps CDFP transceiver. During one-hour testing, a red-shift of central wavelength by 0.4-nm corresponding temperature increment of 6.7 °C was observed with the brass core assisted cooler module. Such a temperature change was significantly lower than that of 28.3 °C for the optical transceiver driven with conventional circuit board. After 100-m distance transmission over a multimode fiber (OM4), the 400-Gbps CDFP transceiver exhibited dispersion penalty of 2.6-dB, power budget of ≧ 3-dB, link loss of ≦ 0.63-dB, mask margin of 20%, and bit error rate (BER) of <10(−12) with maintained stability more than one hour. The developed 400-Gbps CDFP transceiver module employing low-power consumption VCSEL and PD arrays, effective coupling lens arrays, and well thermal-dissipation brass metal core is suitable for use in the low-cost and high-performance data center applications. Nature Publishing Group 2017-04-18 /pmc/articles/PMC5394546/ /pubmed/28417978 http://dx.doi.org/10.1038/srep46608 Text en Copyright © 2017, The Author(s) http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Shih, Tien-Tsorng
Chi, Yu-Chieh
Wang, Ruei-Nian
Wu, Chao-Hsin
Huang, Jian-Jang
Jou, Jau-Ji
Lee, Tai-Cheng
Kuo, Hao-Chung
Lin, Gong-Ru
Cheng, Wood-Hi
Efficient Heat Dissipation of Uncooled 400-Gbps (16×25-Gbps) Optical Transceiver Employing Multimode VCSEL and PD Arrays
title Efficient Heat Dissipation of Uncooled 400-Gbps (16×25-Gbps) Optical Transceiver Employing Multimode VCSEL and PD Arrays
title_full Efficient Heat Dissipation of Uncooled 400-Gbps (16×25-Gbps) Optical Transceiver Employing Multimode VCSEL and PD Arrays
title_fullStr Efficient Heat Dissipation of Uncooled 400-Gbps (16×25-Gbps) Optical Transceiver Employing Multimode VCSEL and PD Arrays
title_full_unstemmed Efficient Heat Dissipation of Uncooled 400-Gbps (16×25-Gbps) Optical Transceiver Employing Multimode VCSEL and PD Arrays
title_short Efficient Heat Dissipation of Uncooled 400-Gbps (16×25-Gbps) Optical Transceiver Employing Multimode VCSEL and PD Arrays
title_sort efficient heat dissipation of uncooled 400-gbps (16×25-gbps) optical transceiver employing multimode vcsel and pd arrays
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5394546/
https://www.ncbi.nlm.nih.gov/pubmed/28417978
http://dx.doi.org/10.1038/srep46608
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