Visualization of microwave absorption of the graphite periodical structure with thermoelastic optical microscope
Proceedings of the Yerevan State University. Physical and mathematical sciences, Tome 54 (2020) no. 3, pp. 172-178.

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This paper shows a non-destructive visualization of the absorption of microwave filed by a graphite periodic structure. The visualization system was a thermo-elastic optical indicator microscope. The article presents the interaction of the electromagnetic field with graphite cylindrical cells of periodicity and shows the distribution of the electromagnetic field over the graphite cells. Depending on the distance between the periodic structure of graphite and the microwave source, the electromagnetic field distribution and absorption rate were different. The visualization was performed using a microwave signal with a frequency of 11 $GHz$ and a maximum power of 35 $dBm$.
Keywords: graphite, microwave field, thermoelasticity.
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L. A. Odabashyan. Visualization of microwave absorption of the graphite periodical structure with thermoelastic optical microscope. Proceedings of the Yerevan State University. Physical and mathematical sciences, Tome 54 (2020) no. 3, pp. 172-178. http://geodesic.mathdoc.fr/item/UZERU_2020_54_3_a5/

[1] X. Shuai, Zh. Liancheng, Zh. Yuan, J. Zhijiang, W. Jing, “Three-Dimensional Periodic Structured Absorber for Broadband Electromagnetic Radiation Absorption”, Electronic Materials Letters, 16 (2020), 340–346 | DOI

[2] J. Wei, Y. Leilei, M. Hua, F. Ya, W. Jiafu, F. Mingde, Q. Shaobo, “Electromagnetic Wave Absorption and Compressive Behavior of a Three-Dimensional Metamaterial Absorber Based on 3D Printed Honeycomb”, Scientific Reports, 8:Article 4817 (2018) | DOI

[3] A. Delfini, M. Albano, A. Vricella, F. Santoni, G. Rubini, R. Pastore, M. Marchetti, “Advanced Radar Absorbing Ceramic-Based Materials for Multifunctional Applications in Space Environment”, Materials, 11:Article 1730 (2018) | DOI

[4] Neeraj Gill, Smitha Puthucheri, Dharmendra Singh, Vijaya Agarwala, “Critical Analysis of Frequency Selective Surfaces Embedded Composite Microwave Absorber for Frequency Range 2–8 $GHz$”, J. Mater Sci: Mater Electron., 28 (2017), 1259–1270 | DOI

[5] Siti Nor Ain Rusly, Khamirul Amin Matori, Ismayadi Ismail et al., “Microwave Absorption Properties of Single- and Double-layer Coatings Based on Strontium Hexaferrite and Graphite Nanocomposite”, Journal of Materials Science: Materials in Electronics, 29 (2018), 114031–14045 | DOI

[6] X. Chen, X. Jia, Z. Wu, X. Tang, X. Zeng, J. Wang, X. Fu, H. Zou, “A Graphite-based Metamaterial Microwave Absorber”, IEEE Antennas and Wireless Propagation Letters, 18 (2019), 1016—1020 | DOI

[7] Zhibo Guo, Hailong Huang, Ding Xie, Hui Xia, “Microwave properties of the singlelayer periodic structure composites composed of ethylene-vinyl acetate and polycrystalline iron fibers”, Scientific Reports, 7:Article 11331 (2017) | DOI

[8] Kumar Abhishek, Singh Samarjit, “Development of Coatings for Radar Absorbing Materials at X-band”, IOP Conference Series: Materials Science and Engineering, 330:Article 012006 (2018) | DOI

[9] Zh. Baghdasaryan, A. Babajanyan, L. Odabashyan, H. Lee, B. Friedman, K. Lee, “Visualization of Microwave Heatingformesh-Patterned Indium-tin-Oxide by a Thermo-Elastic Optical Indicator Microscope”, Armenian Journal of Physics, 11 (2018), 175–179

[10] Zh. Baghdasaryan, A. Babajanyan, L. Odabashyan, Sh. Arakelyan, L. Hanju, B. Gerard, F. Barry, L. Kiejin, “Thermal Distribution in Unidirectional Carbon Composite Material due to the Direct Heating and Microwave Influence Visualized by a Thermo-elastic Optical Indicator Microscope”, Measurement, 151:Article 107189 (2020) | DOI

[11] Ch. Sekaran, B. Tanmay, S. Ramanathan, “Microwave Heating Characteristics of Graphite-based Powder Mixtures”, International Communications in Heat and Mass Transfer, 48 (2013), 22–27 | DOI

[12] M. Hotta, M. Hayashi, M. T. Lanagan, D. K. Agrawal, K. Nagata, “Complex Permittivity of Graphite, Carbon Black and Coal Powders in the Ranges of X-band Frequencies (8.2 to 12.4 $GHz$) and between 1 and 10 $GHz$”, ISIJ International, 51 (2011), 1766–1772 | DOI