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Silicon-Based On-Chip Tunable High-Q-Factor and Low-Power Fano Resonators with Graphene Nanoheaters

Tunable and low-power microcavities are essential for large-scale photonic integrated circuits. Thermal tuning, a convenient and stable tuning method, has been widely adopted in optical neural networks and quantum information processing. Recently, graphene thermal tuning has been demonstrated to be...

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Autores principales: Hong, Qilin, Jiang, Jinbao, Zhou, Siyu, Xia, Gongyu, Xu, Ping, Zhu, Mengjian, Xu, Wei, Zhang, Jianfa, Zhu, Zhihong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10222272/
https://www.ncbi.nlm.nih.gov/pubmed/37242052
http://dx.doi.org/10.3390/nano13101636
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author Hong, Qilin
Jiang, Jinbao
Zhou, Siyu
Xia, Gongyu
Xu, Ping
Zhu, Mengjian
Xu, Wei
Zhang, Jianfa
Zhu, Zhihong
author_facet Hong, Qilin
Jiang, Jinbao
Zhou, Siyu
Xia, Gongyu
Xu, Ping
Zhu, Mengjian
Xu, Wei
Zhang, Jianfa
Zhu, Zhihong
author_sort Hong, Qilin
collection PubMed
description Tunable and low-power microcavities are essential for large-scale photonic integrated circuits. Thermal tuning, a convenient and stable tuning method, has been widely adopted in optical neural networks and quantum information processing. Recently, graphene thermal tuning has been demonstrated to be a power-efficient technique, as it does not require thick spacers to prevent light absorption. In this paper, a silicon-based on-chip Fano resonator with graphene nanoheaters is proposed and fabricated. This novel Fano structure is achieved by introducing a scattering block, and it can be easily fabricated in large quantities. Experimental results demonstrate that the resonator has the characteristics of a high quality factor (∼31,000) and low state-switching power (∼1 mW). The temporal responses of the microcavity exhibit qualified modulation speed with 9.8 μs rise time and 16.6 μs fall time. The thermal imaging and Raman spectroscopy of graphene at different biases were also measured to intuitively show that the tuning is derived from the joule heating effect of graphene. This work provides an alternative for future large-scale tunable and low-power-consumption optical networks, and has potential applications in optical filters and switches.
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spelling pubmed-102222722023-05-28 Silicon-Based On-Chip Tunable High-Q-Factor and Low-Power Fano Resonators with Graphene Nanoheaters Hong, Qilin Jiang, Jinbao Zhou, Siyu Xia, Gongyu Xu, Ping Zhu, Mengjian Xu, Wei Zhang, Jianfa Zhu, Zhihong Nanomaterials (Basel) Article Tunable and low-power microcavities are essential for large-scale photonic integrated circuits. Thermal tuning, a convenient and stable tuning method, has been widely adopted in optical neural networks and quantum information processing. Recently, graphene thermal tuning has been demonstrated to be a power-efficient technique, as it does not require thick spacers to prevent light absorption. In this paper, a silicon-based on-chip Fano resonator with graphene nanoheaters is proposed and fabricated. This novel Fano structure is achieved by introducing a scattering block, and it can be easily fabricated in large quantities. Experimental results demonstrate that the resonator has the characteristics of a high quality factor (∼31,000) and low state-switching power (∼1 mW). The temporal responses of the microcavity exhibit qualified modulation speed with 9.8 μs rise time and 16.6 μs fall time. The thermal imaging and Raman spectroscopy of graphene at different biases were also measured to intuitively show that the tuning is derived from the joule heating effect of graphene. This work provides an alternative for future large-scale tunable and low-power-consumption optical networks, and has potential applications in optical filters and switches. MDPI 2023-05-13 /pmc/articles/PMC10222272/ /pubmed/37242052 http://dx.doi.org/10.3390/nano13101636 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Hong, Qilin
Jiang, Jinbao
Zhou, Siyu
Xia, Gongyu
Xu, Ping
Zhu, Mengjian
Xu, Wei
Zhang, Jianfa
Zhu, Zhihong
Silicon-Based On-Chip Tunable High-Q-Factor and Low-Power Fano Resonators with Graphene Nanoheaters
title Silicon-Based On-Chip Tunable High-Q-Factor and Low-Power Fano Resonators with Graphene Nanoheaters
title_full Silicon-Based On-Chip Tunable High-Q-Factor and Low-Power Fano Resonators with Graphene Nanoheaters
title_fullStr Silicon-Based On-Chip Tunable High-Q-Factor and Low-Power Fano Resonators with Graphene Nanoheaters
title_full_unstemmed Silicon-Based On-Chip Tunable High-Q-Factor and Low-Power Fano Resonators with Graphene Nanoheaters
title_short Silicon-Based On-Chip Tunable High-Q-Factor and Low-Power Fano Resonators with Graphene Nanoheaters
title_sort silicon-based on-chip tunable high-q-factor and low-power fano resonators with graphene nanoheaters
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10222272/
https://www.ncbi.nlm.nih.gov/pubmed/37242052
http://dx.doi.org/10.3390/nano13101636
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