Waveguide based Electroabsorption Modulator Performance
Rubab Amin, Jacob B. Khurgin, Volker J. Sorger

TL;DR
This paper provides a comprehensive analysis of waveguide-based electro-absorption modulators, exploring how material properties and physical effects influence performance, with insights into optimizing energy efficiency and switching charge.
Contribution
It introduces a holistic performance analysis framework considering various material classes and physical effects, guiding future modulator design and material selection.
Findings
Reducing modal area improves modulator performance and energy efficiency.
Broadening effects increase the switching charge needed.
Plasmonics can significantly reduce switching energy compared to bulk photonics.
Abstract
Electro-optic modulation is a key function for data communication. Given the vast amount of data handled, understanding the intricate physics and trade-offs of modulators on-chip allows revealing performance regimes not explored yet. Here we show a holistic performance analysis for waveguide-based electro-absorption modulators. Our approach centers around material properties revealing obtainable optical absorption leading to effective modal cross-section, and material broadening effects. Taken together both describe the modulator physical behavior entirely. We consider a plurality of material modulation classes to include two-level absorbers such as quantum dots, free carrier accumulation or depletion such as ITO or Silicon, two-dimensional electron gas in semiconductors such as quantum wells, Pauli blocking in Graphene, and excitons in two-dimensional atomic layered materials such as…
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