Kitchen R. RF and Microwave Radiation Safety Handbook. 2ed. UK: Elsevier; 2001.
Kubacki R. Biological interaction of pulse-modulated electromagnetic fields and protection of humans from exposure to fields emitted from radars. MIKON 2008 - 17th International Conference on Microwaves, Radar and Wireless Communications. 2008; IEEE; pp. 1-7.
Yakymenko I, Sidorik E, Kyrylenko S, Chekhun V. Long-term exposure to microwave radiation provokes cancer growth: evidences from radars and mobile communication systems. Exp Oncol 2011;33(2):62-70.
Repacholi MH. Health risks from the use of mobile phones. Toxicol Lett 2001;120(1-3):323–31.
Vrhovac G, Gajski G, (Pazanin S, Sarolic A, (Domijan A-M, Flajs D, et al. Assessment of cytogenetic damage and oxidative stress in personnel occupationally exposed to the pulsed microwave radiation of marine radar equipment International. Int J Hyg Environ Health 2011;214(1):59-65.
Cember H, Johnson TE. Introduction to Health Physics. 4th ed. New York: McGraw Hill Professional; 2009.
Leavey J. RF & Microwave Safety Program: cornell university; 2009. Available from: www.ehs.cornell.edu/File/RF_Microwave_Safety_Program_Guide(2).pdf.
Occupational exposure limits. Forth, editor. Tehran: Environmental and Occupational Health Center, Iran Ministry of Health and Medical Education; 2016. [Persian]
Curtis RA. Elements of a comprehensive RF protection program: role of RF measurements. occupational safety & health administration. 1999. Available from: https://www.osha.gov/SLTC/radiofrequencyradiation/elem_com.html
International Commission on Non-Ionizing Radiation Protection. General approach to protection against non-ionizing radiation protection. Health Physics 2002;82(4):540‐8.
Shen G, Xu M, Xu Z. Double-layer microwave absorber based on ferrite and short carbon fiber composites. Materials Chemistry and Physics 2007;105(2-3):268-72.
Qiao M, Cunrui Zhang, and Haiye Jia. Synthesis and absorbing mechanism of two-layer microwave absorbers containing flocs-like nano-BaZn1. 5Co0. 5Fe16O27 and carbonyl iron. Materials Chemistry and Physics 2012;135(2-3):604-9.
Meshram MR, Agrawal NK, Sinha B, Misra PS. Characterization of M-type barium hexagonal ferrite-based wide band microwave absorber. J Magn Magn Mater 2004;271(2-3):207-14.
Das S, Nayak GC, Sahu SK, Routray PC, Roy AK, Baskey H. Microwave absorption properties of double-layer composites using CoZn/NiZn/MnZn-ferrite and titanium dioxide. J Magn Magn Mater 2015;377:111-6.
Hou C, Li T, Zhao T, Zhang W, Cheng Y. Electromagnetic wave absorbing properties of carbon nanotubes doped rare metal/pure carbon nanotubes double-layer polymer composites. Materials and Design 2012;33:413-8.
Meng W, Yuping D, Shunhua L, Xiaogang L, Zhijiang J. Absorption properties of carbonyl-iron/carbon black double-layer microwave absorbers. J Magn Magn Mater 2009;321(20): 3442-6.
Liu Y, Liu X, Wang X. Double-layer microwave absorber based on CoFe2O4 ferrite and carbonyl iron composites. J Alloys Compd 2014;584:249-53.
Sunny V, Kurian P, Mohanan P, Joy PA, Anantharaman MR. A flexible microwave absorber based on nickel ferrite nanocomposite. J Alloys Compd 2010;489(1):297-303.
Qing Y, Zhou W, Luo F, Zhu D. Epoxy-silicone filled with multi-walled carbon nanotubes and carbonyl iron particles as a microwave absorber. Carbon 2010;48(14):4074-80.
Idris FM, Hashim M, Abbas Z, Ismail I, Nazlan R, Ibrahim IR. Recent developments of smart electromagnetic absorbers based polymer-composites at gigahertz frequencies. J Magn Magn Mater 2016;405:197-208.
Celozzi S, Araneo R, Lovat G. Shielding Materials. In: Chang K, editor. Electromagnetic Shielding. New Jersey: John Wiley & Sons, Inc.; 2008. p. 21-41
SIGMA-ALDRICH. Carbonyl iron-Material Safety Data Sheet 2012. Available from: https://www.sigmaaldrich.com/catalog/search?term=7439-89-6.
US Research Nanomaterials. Nickel Nanoparticles (Ni)-Material Safety Data Sheet. Available from: https://n.b5z.net/i/u/10091461/f/MSDS-NANOPOWDERS/US1120.pdf.
Ramimoghadam D, Bagheri S, Abd Hamid SB. Stable monodisperse nanomagnetic colloidal suspensions: An overview. Colloids Surf B Biointerfaces 2015;133:388-411.
Jalali M. Improving electromagnetic shielding with metallic nanoparticles [Dissertation]. Montreal: Concordia University; 2013.
Mohammadyani D, Hosseini SA, Sadrnezhaad SK. Characterization of nickel oxide nanoparticles synthesized via rapid microwave-assisted route. Int J Mod Phys Conf Ser 2012;5:270-6.
Sabohi N. production of two dimension of nickel oxide nanostructure on nickel sheet and investigation of its photocatalist properties [Dissertation]. Tehran: Islamic azad university-central tehran branch; 2012. [Persian]
Zaroushani V, Khavanin A, Jonidi Jafari A, Mortazavi SB, Khajenasiri F. Investigation of factors influencing the efficacy of electromagnetic shielding in X band frequency range. JHSW 2016;6(4):1-16.
Zaroushani V, Khavanin A, Jonidi Jafari A, Mortazavi SB. A New Microwave Shield Preparation for Super High Frequency Range: Occupational Approach to Radiation Protection. J Res Health Sci 2016;4(16):206-11.
Khastgira NC, Dasa D, Chakia TK, Chakrabortyb A. Electromagnetic interference shielding effectiveness of carbon black and carbon fibre filled EVA and NR based composites. Composites: Part A 2000;31(10):1069-81.
Wang Y, Jing X. Intrinsically conducting polymers for electromagnetic interference shielding. Polymers for Advanced Technologies. 2005;16(4):344-51.
Hemming, Leland H. shielding theory. In: Shaw L, editor. Architectural Electromagnetic Shielding Handbook-A Design and Specification Guide. New York: IEEE Press; 1992. p. 13-34.
Bonaldi RR, Siores E, Shah T. Characterization of electromagnetic shielding fabrics obtained from carbon nanotube composite coatings. Synthetic Metals 2014;187:1- 8.
zaroushani v, Khavanin A, Mortazavi S, Jonidi Jafari A, Moeini M, Javadzadeh M. The role of a new electromagnetic shielding in reducing the microwave radiation (A case study for the X-band frequencies). ioh 2015;12(5):90-9. [Persian]
Wang Y, Luo F, Zhou Wc, Zhu D. Dielectric and electromagnetic wave absorbing properties of TiC/epoxy composites in the GHz range. Ceram Int 2014;40(7):10749-54.