Taking silicon photonics modulators to a higher performance level: state-of-the-art and a review of new technologies

Повышение уровня производительности модуляторов кремниевой фотоники: современное состояние и обзор новых технологий
Bart Kuyken, Dries Van Thourhout, Abdul Rahim, Roel Baets, Despoina Petousi, Artur Hermans, Benjamin Wohlfeil
2021-04-29

electro-absorptive materials integrationelectro-refractive materials integrationhigh-speed optical modulatorsplasma dispersion modulatorssilicon photonics
Optical links are moving to higher and higher transmission speeds while shrinking to shorter and shorter ranges where optical links are envisaged even at the chip scale. The scaling in data speed and span of the optical links demands modulators to be concurrently performant and cost-effective. Silicon photonics (SiPh), a photonic integrated circuit technology that leverages the fabrication sophistication of complementary metal-oxide-semiconductor technology, is well-positioned to deliver the performance, price, and manufacturing volume for the high-speed modulators of future optical communication links. SiPh has relied on the plasma dispersion effect, either in injection, depletion, or accumulation mode, to demonstrate efficient high-speed modulators. The high-speed plasma dispersion silicon modulators have been commercially deployed and have demonstrated excellent performance. Recent years have seen a paradigm shift where the integration of various electro-refractive and electro-absorptive materials has opened up additional routes toward performant SiPh modulators. These modulators are in the early years of their development. They promise to extend the performance beyond the limits set by the physical properties of silicon. The focus of our study is to provide a comprehensive review of contemporary (i.e., plasma dispersion modulators) and new modulator implementations that involve the integration of novel materials with SiPh.
1
Integration of various electro-refractive and electro-absorptive novel materials with silicon photonics offers new routes to extend modulator performance beyond silicon’s physical limits.
2
New material-integrated modulators are at an early development stage but promise to surpass traditional plasma-dispersion-based SiPh modulators.
3
Scaling data speeds and shorter link spans, including chip-scale links, require modulators that are both high-performance and cost-effective, a need SiPh can address.
4
Silicon photonics modulators using plasma dispersion (injection, depletion, accumulation) have been commercially deployed and demonstrate excellent high-speed performance.
5
This work provides a comprehensive review comparing contemporary plasma-dispersion modulators with emerging material-integrated SiPh modulator implementations.

Silicon photonics modulators (including plasma-dispersion modulators and modulators integrating novel electro-refractive/electro-absorptive materials)

Performance characteristics, limitations, and advancement pathways of high-speed SiPh modulators—comparing state-of-the-art plasma-dispersion devices and emerging modulators enabled by integration of novel materials to extend speed, efficiency, and manufacturability

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Publication Date
2021-04-29
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Authors
Bart Kuyken
Dries Van Thourhout
Abdul Rahim
Roel Baets
Despoina Petousi
Artur Hermans
Benjamin Wohlfeil
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