TY - JOUR
T1 - High-Speed and On-Chip Optical Switch Based on a Graphene Microheater
AU - Nakamura, Shoma
AU - Sekiya, Kota
AU - Matano, Shinichiro
AU - Shimura, Yui
AU - Nakade, Yuuki
AU - Nakagawa, Kenta
AU - Monnai, Yasuaki
AU - Maki, Hideyuki
N1 - Funding Information:
The authors thank D. Tsuya, E. Watanabe, H. Osato, M. Yoshida, S. Moriyama, and K. Komatsu in NIMS and H. Sumikura in NTT Basic Research Laboratories for technical support and discussions. This work was technically supported by Kanagawa Institute of Industrial Science and Technology (KISTEC), Core-to-Core program from JSPS, Spintronics Research Network of Japan, and NIMS Nanofabrication Platform in Nanotechnology Platform Project sponsored by the Ministry of Education, Culture, Sports, Science and Technology (MEXT), Japan. This work was partially financially supported by PRESTO (Grant Number JPMJPR152B) and A-STEP (Grant Number JPMJTR20R4) from JST and KAKENHI (Grant Numbers 16H04355, 23686055, 18K19025, and 20H02210).
Publisher Copyright:
© 2022 American Chemical Society
PY - 2022/2/22
Y1 - 2022/2/22
N2 - Graphene is a promising material for producing optical devices because of its optical, electronic, thermal, and mechanical properties. Here, we demonstrated on-chip optical switches equipped with a graphene heater, which exhibited high modulation speed and efficiency. We designed the optimal structure of the optical switch with an add/drop-type racetrack resonator and two output waveguides (the through and drop ports) by the electromagnetic field calculation. We fabricated the optical switch in which the graphene microheater was directly placed on the resonator and directly observed its operation utilizing a near-infrared camera. As observed from the transmission spectra, this device exhibited high wavelength tuning efficiency of 0.24 nm/mW and high heating efficiency of 7.66 K·μm3/mW. Further, we measured the real-time high-speed operation at 100 kHz and verified that the graphene-based optical switch achieved high-speed modulation with 10%-90% rise and fall response times, 1.2 and 3.6 μs, respectively, thus confirming that they are significantly faster than typical optical switches that are based on racetrack resonators and metal heaters with response times of ∼100 μs. These graphene-based optical switches on silicon chips with high efficiency and speed are expected to enable high-performance silicon photonics and integrated optoelectronic applications.
AB - Graphene is a promising material for producing optical devices because of its optical, electronic, thermal, and mechanical properties. Here, we demonstrated on-chip optical switches equipped with a graphene heater, which exhibited high modulation speed and efficiency. We designed the optimal structure of the optical switch with an add/drop-type racetrack resonator and two output waveguides (the through and drop ports) by the electromagnetic field calculation. We fabricated the optical switch in which the graphene microheater was directly placed on the resonator and directly observed its operation utilizing a near-infrared camera. As observed from the transmission spectra, this device exhibited high wavelength tuning efficiency of 0.24 nm/mW and high heating efficiency of 7.66 K·μm3/mW. Further, we measured the real-time high-speed operation at 100 kHz and verified that the graphene-based optical switch achieved high-speed modulation with 10%-90% rise and fall response times, 1.2 and 3.6 μs, respectively, thus confirming that they are significantly faster than typical optical switches that are based on racetrack resonators and metal heaters with response times of ∼100 μs. These graphene-based optical switches on silicon chips with high efficiency and speed are expected to enable high-performance silicon photonics and integrated optoelectronic applications.
KW - graphene
KW - racetrack resonators
KW - silicon photonics
KW - silicon waveguide
KW - thermo-optic switch
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U2 - 10.1021/acsnano.1c09526
DO - 10.1021/acsnano.1c09526
M3 - Article
C2 - 35156795
AN - SCOPUS:85125020728
SN - 1936-0851
VL - 16
SP - 2690
EP - 2698
JO - ACS Nano
JF - ACS Nano
IS - 2
ER -