Fionov Alexander, Kraev Ivan, Yurkov Gleb, Solodilov Vitaly, Zhukov Alexander, Surgay Anastasia, Kuznetsova Iren, Kolesov Vladimir
Kotelnikov Institute of Radio Engineering and Electronics of RAS, 125009 Moscow, Russia.
Institute of Biochemical Physics Named after N.M. Emanuel Russian Academy of Sciences, 119334 Moscow, Russia.
Polymers (Basel). 2022 Jul 26;14(15):3026. doi: 10.3390/polym14153026.
Recently, designers of electronic equipment have paid special attention to the issue of electromagnetic compatibility (EMC) of devices with their own components and assemblies. This is due to the high sensitivity of semiconductor microcircuits to electromagnetic interference. This interference can be caused either by natural phenomena, such as lightning strikes, or by technical processes, such as transients in circuits during fast periodic or random switching. Either way, interference implies a sudden change in voltage or current in a circuit, which is undesirable, whether it propagates along a cable or is transmitted as an electromagnetic wave. The purpose of this article is to review the works devoted to the development, creation, and investigation of modern polymeric nanocomposite materials used for shielding electromagnetic radiation and their effective application for solving problems of electromagnetic compatibility. Additionally, the approach to design EMI shielding complex media with predetermined parameters based on investigation of various properties of possible components is shown. In the review, all polymer composites are classified according to the type of filler. The issues of the interaction of a polymer with conductive fillers, the influence of the concentration of fillers and their location inside the matrix, and the structure of the nanocomposite on the mechanisms of electromagnetic interaction are considered. Particular attention is paid to a new generation of nanocomposite materials with widely adjustable electrical and magnetic properties. A wide class of modern filled polymeric materials with dielectric and magneto-dielectric losses is considered. These materials make it possible to create effective absorbers of electromagnetic waves that provide a low level of reflection coefficient in the microwave range. The model mechanisms for shielding electromagnetic radiation are considered in the paper. A detailed review of the electro-physical properties of polymer nanocomposites is provided. Multilayer electrodynamic media containing combinations of layers of filled polymer composite materials with nanoparticles of different compositions and manufactured using a single technology will make it possible to create electrodynamic media and coatings with the required electro-physical characteristics of absorption, transmission, and reflection. Within the framework of the two-layer coating model, the difference in the effects of the interaction of electromagnetic radiation with conductive layers located on a dielectric and metal substrate is demonstrated. It is shown that in order to achieve optimal (maximum) values of reflection and absorption of electromagnetic radiation in the appropriate frequency range, it is necessary to fit the appropriate layer thicknesses, specific conductivity, and permittivity. Such approach allows designers to create new shielding materials that can effectively vary the shielding, absorbing, and matching characteristics of coatings over a wide frequency band. In general, it can be said that the development of innovative polymer composite materials for shielding electronic devices from electromagnetic interference and excessive electromagnetic background is still an important task. Its solution will ensure the safe and uninterrupted operation of modern digital electronics and can be used for other applications.
最近,电子设备设计师特别关注设备与其自身组件和装配体的电磁兼容性(EMC)问题。这是因为半导体微电路对电磁干扰高度敏感。这种干扰可能由自然现象引起,如雷击,也可能由技术过程引起,如快速周期性或随机开关期间电路中的瞬变。无论哪种方式,干扰都意味着电路中电压或电流的突然变化,这是不可取的,无论它是沿着电缆传播还是作为电磁波传输。本文的目的是回顾致力于开发、制造和研究用于屏蔽电磁辐射的现代聚合物纳米复合材料及其在解决电磁兼容性问题方面的有效应用的相关著作。此外,还展示了基于对可能组件的各种特性的研究来设计具有预定参数的电磁干扰屏蔽复合介质的方法。在这篇综述中,所有聚合物复合材料都根据填料类型进行分类。考虑了聚合物与导电填料的相互作用问题、填料浓度及其在基体中的位置以及纳米复合材料的结构对电磁相互作用机制的影响。特别关注具有广泛可调电学和磁学性质的新一代纳米复合材料。考虑了一大类具有介电和磁介电损耗的现代填充聚合物材料。这些材料能够制造出有效的电磁波吸收体,在微波范围内提供低水平的反射系数。本文考虑了屏蔽电磁辐射的模型机制。提供了对聚合物纳米复合材料电物理性质的详细综述。包含不同组成纳米粒子的填充聚合物复合材料层组合并采用单一技术制造的多层电动介质,将能够制造出具有所需吸收、传输和反射电物理特性的电动介质和涂层。在双层涂层模型的框架内,展示了电磁辐射与位于电介质和金属基体上的导电层相互作用的效果差异。结果表明,为了在适当的频率范围内实现电磁辐射反射和吸收的最佳(最大)值,有必要匹配合适的层厚度、电导率和介电常数。这种方法使设计师能够创造出新的屏蔽材料,这些材料可以在很宽的频带内有效地改变涂层的屏蔽、吸收和匹配特性。总的来说,可以说开发用于保护电子设备免受电磁干扰和过多电磁背景影响的创新聚合物复合材料仍然是一项重要任务。其解决方案将确保现代数字电子设备的安全和不间断运行,并可用于其他应用。