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      Dispersed-Monolayer Graphene-Doped Polymer/Silica Hybrid Mach-Zehnder interferometer (MZI) Thermal Optical Switch with Low-Power Consumption and Fast Response

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          Abstract

          This article demonstrates a dispersed-monolayer graphene-doped polymer/silica hybrid Mach–Zehnder interferometer (MZI) thermal optical switch with low-power consumption and fast response. The polymer/silica hybrid MZI structure reduces the power consumption of the device as a result of the large thermal optical coefficient of the polymer material. To further decrease the response time of the thermal optical switch device, a polymethyl methacrylate, doped with monolayer graphene as a cladding material, has been synthesized. Our study theoretically analyzed the thermal conductivity of composites using the Lewis–Nielsen model. The predicted thermal conductivity of the composites increased by 133.16% at a graphene volume fraction of 0.263 vol %, due to the large thermal conductivity of graphene. Measurements taken of the fabricated thermal optical switch exhibited a power consumption of 7.68 mW, a rise time of 40 μs, and a fall time of 80 μs at a wavelength of 1550 nm.

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          Most cited references26

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          Ultrafast optical switching of infrared plasmon polaritons in high-mobility graphene

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            Ultrafast all-optical switching in nanoplasmonic waveguide with Kerr nonlinear resonator.

            A novel ultrafast all-optical switching based on metal-insulator-metal nanoplasmonic waveguide with a Kerr nonlinear resonator is proposed and investigated numerically. With the finite-difference time-domain simulations, it is demonstrated that an obvious optical bistability of the signal light appears by varying the control-light intensity, and an excellent switching effect is achieved. This bistability originates from the intensity-dependent change induced in the dielectric constant of Kerr nonlinear material filled in the nanodisk resonator. It is found that the proposed all-optical switching exhibits femtosecond-scale feedback time.
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              Fast and low-power thermooptic switch on thin silicon-on-insulator

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                Author and article information

                Journal
                Polymers (Basel)
                Polymers (Basel)
                polymers
                Polymers
                MDPI
                2073-4360
                18 November 2019
                November 2019
                : 11
                : 11
                : 1898
                Affiliations
                State Key Laboratory of Integrated Optoelectronics, College of Electronic Science and Engineering, Jilin University, Changchun 130012, China; yuecao17@ 123456mails.jlu.edu.cn (Y.C.); zhangdm@ 123456jlu.edu.cn (D.Z.); a2604702999@ 123456163.com (Y.Y.); linbz17@ 123456mails.jlu.edu.cn (B.L.); lvjw18@ 123456mails.jlu.edu.cn (J.L.); yangxw1918@ 123456mails.jlu.edu.cn (X.Y.); zhaohw1918@ 123456mails.jlu.edu.cn (H.Z.); wang_fei@ 123456jlu.edu.cn (F.W.); libh@ 123456jlu.edu.cn (B.L.)
                Author notes
                [* ]Correspondence: yiyj@ 123456jlu.edu.cn ; Tel.: +86-0431-8516-8097
                Author information
                https://orcid.org/0000-0002-8471-4689
                Article
                polymers-11-01898
                10.3390/polym11111898
                6918438
                31752135
                51b090c6-9ce8-4a0f-9fc5-714d734f49ee
                © 2019 by the authors.

                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 ( http://creativecommons.org/licenses/by/4.0/).

                History
                : 28 October 2019
                : 14 November 2019
                Categories
                Article

                thermal optical switch,dispersed-monolayer graphene,hybrid integrated waveguide,thermal conductivity,lewis–nielsen model

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