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Silicon Thermo-Optic Switches with Graphene Heaters Operating at Mid-Infrared Waveband

Authors :
Chuyu Zhong
Zhibin Zhang
Hui Ma
Maoliang Wei
Yuting Ye
Jianghong Wu
Bo Tang
Peng Zhang
Ruonan Liu
Junying Li
Lan Li
Xiaoyong Hu
Kaihui Liu
Hongtao Lin
Source :
Nanomaterials, Vol 12, Iss 7, p 1083 (2022)
Publication Year :
2022
Publisher :
MDPI AG, 2022.

Abstract

The mid-infrared (MIR, 2–20 μm) waveband is of great interest for integrated photonics in many applications such as on-chip spectroscopic chemical sensing, and optical communication. Thermo-optic switches are essential to large-scale integrated photonic circuits at MIR wavebands. However, current technologies require a thick cladding layer, high driving voltages or may introduce high losses in MIR wavelengths, limiting the performance. This paper has demonstrated thermo-optic (TO) switches operating at 2 μm by integrating graphene onto silicon-on-insulator (SOI) structures. The remarkable thermal and optical properties of graphene make it an excellent heater material platform. The lower loss of graphene at MIR wavelength can reduce the required cladding thickness for the thermo-optics phase shifter from micrometers to tens of nanometers, resulting in a lower driving voltage and power consumption. The modulation efficiency of the microring resonator (MRR) switch was 0.11 nm/mW. The power consumption for 8-dB extinction ratio was 5.18 mW (0.8 V modulation voltage), and the rise/fall time was 3.72/3.96 μs. Furthermore, we demonstrated a 2 × 2 Mach-Zehnder interferometer (MZI) TO switch with a high extinction ratio of more than 27 dB and a switching rise/fall time of 4.92/4.97 μs. A comprehensive analysis of the device performance affected by the device structure and the graphene Fermi level was also performed. The theoretical figure of merit (2.644 mW−1μs−1) of graphene heaters is three orders of magnitude higher than that of metal heaters. Such results indicate graphene is an exceptional nanomaterial for future MIR optical interconnects.

Details

Language :
English
ISSN :
20794991
Volume :
12
Issue :
7
Database :
Directory of Open Access Journals
Journal :
Nanomaterials
Publication Type :
Academic Journal
Accession number :
edsdoj.92be76d47938435a8934593629df90b2
Document Type :
article
Full Text :
https://doi.org/10.3390/nano12071083