首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Graphene oxide vs. reduced graphene oxide as core substrate for core/shell-structured dielectric nanoplates with different electro-responsive characteristics
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Graphene oxide vs. reduced graphene oxide as core substrate for core/shell-structured dielectric nanoplates with different electro-responsive characteristics

机译:氧化石墨烯与还原氧化石墨烯作为具有不同电响应特性的核/壳结构介电纳米板的核基质

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摘要

Not only the polarizability but also the polarization rate of particles is important to the electro-responsive electrorheological (ER) characteristic of particle suspensions. In this paper, we respectively used non-conducting graphene oxide (GO) and conducting reduced graphene oxide (r-GO) as the core and use insulating SiO2 as the shell to prepare core/shell-structured dielectric nanoplates for the purpose of achieving an optimum ER response to different electric stimuli. The morphology and structure of the samples are characterized by scanning electron microscopy, transmission electron microscopy, atomic force microscopy, X-ray diffraction, thermogravimetric analysis, Raman spectroscopy, and X-ray photoelectronic spectroscopy. The conductivity and dielectric properties are measured by an impedance analyzer and the electro-responsive ER characteristics of nanoplates dispersed in insulating oil are investigated by a rheometer. These demonstrate that coating with SiO2 can provide an electrical insulating effect for the GO or r-GO core, while GO vs. r-GO as the core can induce distinctly different dielectric polarization responses. Compared to GO/SiO2, r-GO/SiO2 shows a significantly faster polarization rate due to the high conductivity of the r-GO core. As a result, the r-GO/SiO2 suspension exhibits a high ER response to high-frequency AC electric fields, while the GO/SiO2 suspension exhibits a high ER response to DC or low-frequency AC electric fields. This different electro-responsive characteristic can be explained by the influence of the polarization rate on interparticle interaction.
机译:不仅颗粒的极化率,而且颗粒的极化速率对于颗粒悬浮液的电响应电流变(ER)特性都很重要。在本文中,我们分别以非导电氧化石墨烯(GO)和导电还原氧化石墨烯(r-GO)为芯,以绝缘SiO2为壳,制备核/壳结构介电纳米板,以实现对不同电刺激的最佳ER反应。样品的形态和结构通过扫描电子显微镜,透射电子显微镜,原子力显微镜,X射线衍射,热重分析,拉曼光谱和X射线光电光谱来表征。通过阻抗分析仪测量电导率和介电性能,并通过流变仪研究分散在绝缘油中的纳米板的电响应ER特性。这些证明用SiO2涂层可以为GO或r-GO磁芯提供电绝缘效果,而GO与r-GO作为磁芯可以引起截然不同的介电极化响应。与GO / SiO2相比,由于r-GO磁芯的高电导率,r-GO / SiO2显示出明显更快的极化速率。结果,r-GO / SiO 2悬浮液对高频交流电场表现出高ER响应,而GO / SiO 2悬浮液对直流或低频交流电场表现出高ER响应。极化率对粒子间相互作用的影响可以解释这种不同的电响应特性。

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