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Articles

Design and Development of Banana Leaves-based Double-layer Microwave Absorber

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References

  • O. H. Al-Zoubi, and H. Naseem, “Enhancing the performance of the microwave absorbing materials by using dielectric resonator arrays,” Model. Simul. Eng., Vol. 2017, pp. 1–8, 2017.
  • S. Yoshida, M. Sato, E. Sugawara, and Y. Shimada, “Permeability and electromagnetic-interference characteristics of Fe–Si–Al alloy flakes–polymer composite,” J. Appl. Phys, Vol. 85, pp. 4636–8, 1999.
  • S. Yoshida, S. Ando, Y. Shimada, K. Suzuki, and K. Nomura, “Crystal structure and microwave permeability of very thin Fe–Si–Al flakes produced by micro forging,” J. Appl. Phys, Vol. 93, pp. 6659–62, 2003.
  • R. Moucka, A. V. Lopatin, N. E. Kazantseva, J. Vilcakova, and P. Saha, “Enhancement of magnetic losses in hybrid polymer composites with MnZn-ferrite and conductive fillers,” J. Mater. Sci, Vol. 42, pp. 9480–90, 2007.
  • B. Smythe, S. Casserly, and D. Arakaki, “Organic based microwave frequency absorbers using corn-stover,” IEEE Antennas and Propagation Society International Symposium (APSURSI), Memphis, USA, 2011, pp. 920–1.
  • H. Nornikman, P. J. Soh, A. A. H. Azremi, F. H. Wee, and F. Malek, “Investigation of agricultural waste as an alternative material for microwave absorbers,” PIERS Online, Vol. 5, pp. 506–10, 2009.
  • F. H. Wee, P. J. Soh, A. H. M. Suhaizal, H. Nornikman, and A. A. M. Ezanuddin, “Free space measurement technique on dielectric properties of agricultural residues at microwave frequencies,” IEEE MTT-S International Microwave and Optoelectronics Conference (IMOC), Belem, Brazil, 2009, pp. 183–7.
  • S. Meng Se, A. Shaaban, and I. Mohd Ibrahim, “Microwave absorbing material using rubber wood sawdust,” IEEE Symposium on Wireless Technology and Applications (ISWTA), Langkawi, Malaysia, 2011, pp. 192–7.
  • M. N. Iqbal, F. Malek, Y. S. Lee, L. Zahid, N. F. M. Yusof, and F. S. Abdullah, “Anechoic characteristics of a metal-backed anechoic agro-waste for EMC applications,” IEEE International RF and Microwave Conference (RFM2013), Penang, Malaysia, 2013, pp. 429–32.
  • M. S. Mezan, M. F. A. Malek, M. S. Jusoh, F. S. Abdullah, and N. A. M. Affendi, “Reflection loss performance and performance assessment of pyramidal microwave absorber using agriculture waste,” Progress in Electromagnetics Research Symposium, Guangzhou, China, 2014, pp. 142–5.
  • M. K. M. Salleh, M. Yahya, Z. Awang, W. N. W. Muhamad, A. M. Mozi, and N. Yaacob, “Single-layer coconut shell-based microwave absorber,” IEEE TENCON, Bali, Indonesia, 2011, pp. 1110–3.
  • H. Nornikman, F. Malek, L. Y. Seng, M. H. Ramli, N. A. M. Syafiq, M. H. Mazlan, M. Z. Abd Aziz, B. H. Ahmad, and A. Salleh, “Green technology design of modified wedge microwave absorber using rice husk,” ARPN J. Engg. Appl. Sci., Vol. 10, pp. 7380–5, 2015.
  • S. N. A. Jabal, Y. B. Seok, and W. F. Hoon, “The potential of coconut shell powder (CSP) and coconut shell activated carbon (CSAC) composites as electromagnetic interference (EMI) absorbing material,” Malays. J. Anal. Sci., Vol. 20, pp. 444–51, 2016.
  • Z. Liyana, F. Malek, H. Nornikman, N. A. M. Affendi, L. Mohamed, N. Saudin, and A. A. Ali, “Investigation of sugar cane bagasse as alternative material for pyramidal microwave absorber design,” IEEE Symposium on Wireless Technology and Applications (ISWTA), Bandung, Indonesia, 2012, pp. 66–70.
  • H. Nornikman, M. F. B. A. Malek, P. J. Soh, A. A. Abdullah, F. H. Wee, and A. Hasnain, “Parametric study of pyramidal microwave absorber using rice husk,” Prog. Electromagn. Res., Vol. 104, pp. 145–66, 2010.
  • M. B. Wahid, Overview of the Malaysian Oil Palm Industry 2007. Malaysian Agriculture Research and Development Institute (MARDI), 2008. Available: https://econ.mpob.gov.my/economy/overview07.htm.
  • K. L. Kadam, Environmental Life Cycle Implication of Using Bagasse – Derived Ethanol as a Gasoline Oxygenate in Mumbai (Bombay). National Renewable Energy Laboratory, November 2000. Available: https://www.nrel.gov/docs/fy01osti/28705.pdf.
  • S. Sai, J. Ahmed, and K. Krishnaiah, “Production of activated carbon from coconut shell char in a fluidized bed reactor,” Ind. Eng. Chem. Res., Vol. 38, pp. 1169–71, 1999.
  • A. K. Biswas, P. S. Swarnakar, S. S. Pattanayak, and U. Chakarborty, “Compact MIMO antenna with high port isolation for triple-band applications designed on a biomass material manufactured with coconut husk,” Microw. Opt. Techn. Let (2020). DOI:10.1002/mop.32539.
  • S. S. Pattanayak, S. H. Laskar, and S. Sahoo, “Microwave absorption study of dried banana leaves based single layer microwave absorber,” I. J. Microw. Wire. Techn (2020). DOI:10.1017/S1759078720000707.
  • F. M. Idris, M. Hashim, Z. Abbas, I. Ismail, R. Nazlan, and I. R. Ibrahim, “Recent developments of smart electromagnetic absorbers based polymer-composites at gigahertz frequencies,” J. Magn. Magn. Mater., Vol. 405, pp. 197–208, 2016.
  • Rohde & Schwarz, Measurement of Dielectric Material Properties, 1–36. Singapore, 2012.
  • A. K. Biswas, S. S. Pattanayak, and U. Chakarborty, “Evaluation of dielectric properties of colored resin plastic button to design a small MIMO antenna,” IEEE Tran. Instru. Measur. (2020). DOI:10.1109/TIM.2020.2999736.
  • J. Huo, L. Wang, and H. Yu, “Polymeric nanocomposites for electromagnetic wave absorption,” J. Mater. Sci., Vol. 44, pp. 3917–27, 2009.
  • G. P. Srivastava, P. P. Singh, and J. Nath, “Microwave absorber composed of rubber, carbon and ferrites,” AMPC Asia-Pacific Microwave Conference, Adelaide, Australia, 1992.
  • C. Y. Chen, N. W. Pu, Y. M. Liu, S. Y. Huang, C. H. Wu, and M. D. Ger, “Remarkable microwave absorption performance of graphene at a very low loading ratio,” Compos. Part B Engg, Vol. 114, pp. 395–403, 2017.
  • X. Bai, Y. Zhai, and Y. Zhang, “Green approach to prepare graphene-based composites with high microwave absorption capacity,” J. Phys. Chem. C, Vol. 115, pp. 11673–7, 2011.
  • X. N. Chen, F. C. Meng, Z. W. Zhou, X. Tian, L. M. Shan, and S. B. Zhu, “One-step synthesis of graphene/polyaniline hybrids by in situ intercalation polymerization and their electromagnetic properties,” Nanoscale., Vol. 6, pp. 8140–8, 2014.
  • F. B. Meng, F. Huang, Y. F. Guo, J. J. Chen, X. N. Chen, and D. Hui, “In situ intercalation polymerization approach to polyamide-6/graphite nanoflakes for enhanced thermal conductivity,” Compos. Part B Engg, Vol. 117, pp. 165–73, 2017.
  • X. J. Zhang, G. S. Wang, W. Q. Cao, Y. Z. Wei, J. F. Liang, and L. Guo, “Enhanced microwave absorption property of reduced graphene oxide (RGO)-MnFe2O4 nanocomposites and polyvinylidene fluoride,” ACS Appl. Mater. Interfaces, Vol. 6, pp. 7471–8, 2014.
  • H. Zhang, X. Tian, C. Wang, H. Luo, J. Hu, and Y. Shen, “Facile synthesis of RGO/NiO composites and their excellent electromagnetic wave absorption properties,” Appl. Surf. Sci, Vol. 314, pp. 228–32, 2014.
  • Y. Wang, D. Chen, X. Yin, P. Xu, F. Wu, and M. He, “Hybrid of MoS2 and reduced graphene oxide: a lightweight and broadband electromagnetic wave absorber,” ACS Appl. Mater. Interfaces, Vol. 7, pp. 26226–34, 2015.
  • N. Zhang, Y. H. Huang, M. Zong, X. Ding, S. P. Li, and M. Y. Wang, “Coupling CoFe2O4 and SnS2 nanoparticles with reduced graphene oxide as a high-performance electromagnetic wave absorber,” Ceram. Int., Vol. 42, pp. 15701–8, 2016.
  • S. Das, G. C. Nayak, S. K. Sahu, P. C. Routray, A. K. Roy, and H. Baskey, “Microwave absorption properties of double-layer composites using CoZn/NiZn/MnZn-ferrite and titanium dioxide,” J. Magn. Magn. Mater., Vol. 377, pp. 111–6, 2015.
  • L. Y. Seng, F. H. Wee, H. A. Rahim, M. F. Abdul Malek, Y. K. You, Z. Liyana, and A. A. M. Ezanuddin, “Design of multiple-layer microwave absorbing structure based on rice husk and carbon nanotubes,” Appl. Phys. A, Vol. 123, pp. 73, 2017.
  • M. K. M. Salleh, M. Yahya, Z. Awang, W. N. W. Muhamad, A. M. Mozi, and N. Yaacob, “Binomial multi-layer coconut shell based rubber microwave absorber design,” IEEE International RF and Microwave Conference (RFM 2011), Seremban, Malaysia, 2011, pp. 187–90.

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