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一种提升电压的策略,实现低频、灵活的电磁波吸收装置。

A Voltage-Boosting Strategy Enabling a Low-Frequency, Flexible Electromagnetic Wave Absorption Device.

机构信息

College of Material Science and Technology, Nanjing University of Aeronautics and Astronautics, Nanjing, 210016, P. R. China.

School of Materials Sciences and Engineering, Nanyang Technological University, 50 Nanyang Avenue, 639798, Singapore.

出版信息

Adv Mater. 2018 Apr;30(15):e1706343. doi: 10.1002/adma.201706343. Epub 2018 Mar 7.

Abstract

Nowadays, low-frequency electromagnetic interference (<2.0 GHz) remains a key core issue that plagues the effective attenuation performance of conventional absorption devices prepared via the component-morphology method (Strategy I). According to theoretical calculations, one fundamental solution is to develop a material that possesses a high ε' but lower ε″. Thus, it is attempted to control the dielectric values via applying an external electrical field, which inducts changes in the macrostructure toward a performance improvement (Strategy II). A sandwich-structured flexible electronic absorption device is designed using a carbon film electrode to conduct an external current. Simultaneously, an absorption layer that is highly responsive to an external voltage is selected via Strategy I. Relying on the synergistic effects from Strategies I and II, this device demonstrates an absorption value of more than 85% at 1.5-2.0 GHz with an applied voltage of 16 V while reducing the thickness to ≈5 mm. In addition, the device also shows a good absorption property at 25-150 °C. The method of utilizing an external voltage to break the intrinsic dielectric feature by modifying a traditional electronic absorption device is demonstrated for the first time and has great significance in solving the low-frequency electromagnetic interference issue.

摘要

如今,低频电磁干扰(<2.0GHz)仍然是困扰传统基于成分形态法(策略 I)制备的吸收器件有效衰减性能的关键核心问题。根据理论计算,一个基本的解决方案是开发一种具有高 ε'但低 ε″的材料。因此,试图通过施加外电场来控制介电值,从而引起宏观结构的变化以提高性能(策略 II)。采用碳膜电极设计了一种具有三明治结构的柔性电子吸收器件,以进行外部电流传导。同时,通过策略 I 选择了对外部电压高度响应的吸收层。依靠策略 I 和 II 的协同效应,该器件在施加 16V 电压时,在 1.5-2.0GHz 频段的吸收值超过 85%,同时厚度减小到 ≈5mm。此外,该器件在 25-150°C 时也表现出良好的吸收性能。本文首次展示了利用外部电压通过修改传统电子吸收器件来打破固有介电特性的方法,对于解决低频电磁干扰问题具有重要意义。

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