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Unbiased Plasmonic-Assisted Integrated Graphene Photodetectors

Authors :
Ioannis Vangelidis
Dimitris V. Bellas
Stephan Suckow
George Dabos
Sebastián Castilla
Frank H. L. Koppens
Andrea C. Ferrari
Nikos Pleros
Elefterios Lidorikis
Vangelidis, Ioannis [0000-0002-7488-4166]
Suckow, Stephan [0000-0002-1116-169X]
Castilla, Sebastián [0000-0002-8899-0525]
Koppens, Frank HL [0000-0001-9764-6120]
Ferrari, Andrea C [0000-0003-0907-9993]
Lidorikis, Elefterios [0000-0002-9552-9366]
Apollo - University of Cambridge Repository
Source :
ACS Photonics. 9:1992-2007
Publication Year :
2022
Publisher :
American Chemical Society (ACS), 2022.

Abstract

Photonic integrated circuits (PICs) for next-generation optical communication interconnects and all-optical signal processing require efficient (∼A/W) and fast (≥25 Gbs–1) light detection at low (–1) power consumption, in devices compatible with Si processing, so that the monolithic integration of electro-optical materials and electronics can be achieved consistently at the wafer scale. Graphene-based photodetectors can meet these criteria, thanks to their broadband absorption, ultra-high mobility, ultra-fast electron interactions, and strong photothermoelectric effect. High responsivities (∼ 1 A/W), however, have only been demonstrated in biased configurations, which introduce dark current, noise, and power consumption, while unbiased schemes, with low noise and zero consumption, have remained in the ∼ 0.1 A/W regime. Here, we consider the unbiased asymmetric configuration and show that optimized plasmonic enhanced devices can reach for both transverse-electric and transverse-magnetic modes (at λ = 1550 nm), ∼A/W responsivity, and ∼ 100 GHz operation speed at zero power consumption. We validate the model and material parameters by simulating experimental devices and derive analytical expressions for the responsivity. Our comprehensive modeling paves the way for efficient, fast, and versatile optical detection in PICs with zero power consumption.

Details

ISSN :
23304022
Volume :
9
Database :
OpenAIRE
Journal :
ACS Photonics
Accession number :
edsair.doi.dedup.....cb74aa2e0fb4881621070ae15d6f34b2
Full Text :
https://doi.org/10.1021/acsphotonics.2c00100