Atomically thin nonreciprocal optical isolation

Optical isolators will play a critical role in next-generation photonic circuits, but their on-chip integration requires miniaturization with suitable nonreciprocal photonic materials. Here, we theoretically demonstrate the thinnest possible and polarization-selective nonreciprocal isolation for cir...

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Main Authors: Lin, Xiao, Wang, Zuojia, Gao, Fei, Zhang, Baile, Chen, Hongsheng
Other Authors: School of Physical and Mathematical Sciences
Format: Article
Language:English
Published: 2014
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Online Access:https://hdl.handle.net/10356/102079
http://hdl.handle.net/10220/18909
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1020792023-02-28T19:43:45Z Atomically thin nonreciprocal optical isolation Lin, Xiao Wang, Zuojia Gao, Fei Zhang, Baile Chen, Hongsheng School of Physical and Mathematical Sciences DRNTU::Engineering::Materials::Photonics and optoelectronics materials Optical isolators will play a critical role in next-generation photonic circuits, but their on-chip integration requires miniaturization with suitable nonreciprocal photonic materials. Here, we theoretically demonstrate the thinnest possible and polarization-selective nonreciprocal isolation for circularly polarized waves by using graphene monolayer under an external magnetic field. The underlying mechanism is that graphene electron velocity can be largely different for the incident wave propagating in opposite directions at cyclotron frequency, making graphene highly conductive and reflective in one propagation direction while transparent in the opposite propagation direction under an external magnetic field. When some practical loss is introduced, nonreciprocal isolation with graphene monolayer still possesses good performance in a broad bandwidth. Our work shows the first study on the extreme limit of thickness for optical isolation and provides theoretical guidance in future practical applications. Published version 2014-03-17T01:32:07Z 2019-12-06T20:49:24Z 2014-03-17T01:32:07Z 2019-12-06T20:49:24Z 2014 2014 Journal Article Lin, X., Wang, Z., Gao, F., Zhang, B., & Chen, H. (2014). Atomically thin nonreciprocal optical isolation. Scientific Reports, 4, 1-5. 2045-2322 https://hdl.handle.net/10356/102079 http://hdl.handle.net/10220/18909 10.1038/srep04190 24569672 en Scientific reports © 2014 Nature Publishing Group. This paper was published in Scientific Reports and is made available as an electronic reprint (preprint) with permission of Nature Publishing Group. The paper can be found at the following official DOI: [http://dx.doi.org/10.1038/srep04190].  One print or electronic copy may be made for personal use only. Systematic or multiple reproduction, distribution to multiple locations via electronic or other means, duplication of any material in this paper for a fee or for commercial purposes, or modification of the content of the paper is prohibited and is subject to penalties under law. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Materials::Photonics and optoelectronics materials
spellingShingle DRNTU::Engineering::Materials::Photonics and optoelectronics materials
Lin, Xiao
Wang, Zuojia
Gao, Fei
Zhang, Baile
Chen, Hongsheng
Atomically thin nonreciprocal optical isolation
description Optical isolators will play a critical role in next-generation photonic circuits, but their on-chip integration requires miniaturization with suitable nonreciprocal photonic materials. Here, we theoretically demonstrate the thinnest possible and polarization-selective nonreciprocal isolation for circularly polarized waves by using graphene monolayer under an external magnetic field. The underlying mechanism is that graphene electron velocity can be largely different for the incident wave propagating in opposite directions at cyclotron frequency, making graphene highly conductive and reflective in one propagation direction while transparent in the opposite propagation direction under an external magnetic field. When some practical loss is introduced, nonreciprocal isolation with graphene monolayer still possesses good performance in a broad bandwidth. Our work shows the first study on the extreme limit of thickness for optical isolation and provides theoretical guidance in future practical applications.
author2 School of Physical and Mathematical Sciences
author_facet School of Physical and Mathematical Sciences
Lin, Xiao
Wang, Zuojia
Gao, Fei
Zhang, Baile
Chen, Hongsheng
format Article
author Lin, Xiao
Wang, Zuojia
Gao, Fei
Zhang, Baile
Chen, Hongsheng
author_sort Lin, Xiao
title Atomically thin nonreciprocal optical isolation
title_short Atomically thin nonreciprocal optical isolation
title_full Atomically thin nonreciprocal optical isolation
title_fullStr Atomically thin nonreciprocal optical isolation
title_full_unstemmed Atomically thin nonreciprocal optical isolation
title_sort atomically thin nonreciprocal optical isolation
publishDate 2014
url https://hdl.handle.net/10356/102079
http://hdl.handle.net/10220/18909
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