Structural and Electromagnetic Shielding Effectiveness of Carbon-Coated Cobalt Ferrite Nanoparticles Prepared via Hydrothermal Method

The rapid advancement of communication technology has led to an increase in electromagnetic interference (EMI), or electromagnetic (EM) pollution. This is a cause for concern, as EMI can disrupt communication services, damage electronic equipment, and pose health risks. Regulatory bodies are working...

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Main Authors: Nur Amirah Athirah, Zaini, Nur Iffah Zulaikha, Azman, Ling, Jin Kiong, Rajan, Jose, Muhammad Hafiz, Mazwir, Mohamad Ashry, Jusoh
Format: Article
Language:English
Published: Electromagnetics Academy 2023
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Online Access:http://umpir.ump.edu.my/id/eprint/39156/
http://umpir.ump.edu.my/id/eprint/39156/1/Structural%20and%20Electromagnetic%20Shielding%20Effectiveness%20of%20Carbon-Coated%20Cobalt%20Ferrite%20Nanoparticles%20Prepared%20via%20Hydrothermal%20Method.pdf
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author Nur Amirah Athirah, Zaini
Nur Iffah Zulaikha, Azman
Ling, Jin Kiong
Rajan, Jose
Muhammad Hafiz, Mazwir
Mohamad Ashry, Jusoh
author_facet Nur Amirah Athirah, Zaini
Nur Iffah Zulaikha, Azman
Ling, Jin Kiong
Rajan, Jose
Muhammad Hafiz, Mazwir
Mohamad Ashry, Jusoh
author_sort Nur Amirah Athirah, Zaini
building UMP Institutional Repository
collection Online Access
description The rapid advancement of communication technology has led to an increase in electromagnetic interference (EMI), or electromagnetic (EM) pollution. This is a cause for concern, as EMI can disrupt communication services, damage electronic equipment, and pose health risks. Regulatory bodies are working to develop standards for the safe use of wireless devices, but the problem of EMI is likely to continue to grow as the number of Internet of Thing (IoT) devices continues to increase. To address this issue, this study investigated the effectiveness of carbon-coated cobalt ferrite nanoparticles as a potential material for electromagnetic shielding. The synthesis of cobalt ferrite (CoFe2 O4) nanoparticles was successfully achieved using the co-precipitation method. Subsequently, a carbon coating was applied to the nanoparticles through a hydrothermal process using a 200 mL autoclave made of teflon-lined stainless steel. This process was carried out at a temperature of 180◦ C for a duration of 12 hours, with a heating rate of 8◦ C per minute. This study examined both uncoated and carbon-coated CoFe2 O4 nanoparticles at various ratios of glucose to CoFe2 O4 (1: 1, 2: 1, and 3: 1) using techniques such as X-ray diffraction (XRD), field emission scanning electron microscopy (FESEM), and higher resolution transmission electron microscopy (HRTEM) analysis. The XRD analysis revealed distinct and well-defined peaks corresponding to CoFe2 O4, indicating the successful synthesis of the nanoparticles. The crystallite size of the uncoated CoFe2 O4 nanoparticles was measured to be 11.47 nm, while for the carbon-coated CoFe2 O4, the average crystallite size was determined to be 14.15 nm through XRD analysis. The results obtained from the FTIR analysis were consistent with previous reports and confirmed the formation of spinel CoFe2 O4 nanoparticles, as suggested by published data. The morphological and structural properties of the prepared samples were further characterized using FESEM and HRTEM analysis, which demonstrated uniformity in both particle size distribution and morphology. Overall, the research findings indicated that the structure and properties of CoFe2 O4 nanoparticles were significantly influenced by the carbon coating process. Notably, the optimum ratio of carbon to CoFe2 O4 was found to be 2: 1, which resulted in the highest carbon thickness. The electromagnetic properties of the samples were evaluated using a vector network analyzer (VNA) and measured S-parameters in the frequency range of 8.2 to 12.4 GHz, known as the x-band region, suitable for radar applications. The sample with a carbon ratio of 2: 1 exhibited the highest total shielding effectiveness (SE) of 17 dB at approximately 10 GHz. As a conclusion, the carbon-coated CoFe2 O4 nanoparticles showed promising potential as an effective material for shielding against electromagnetic wave pollution, particularly when the carbon coating and filler composition reached an optimal point. Additionally, the shielding effectiveness performance of the sample could be further enhanced by incorporating a conductive polymer as an auxiliary material.
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spelling ump-391562023-11-02T08:11:59Z http://umpir.ump.edu.my/id/eprint/39156/ Structural and Electromagnetic Shielding Effectiveness of Carbon-Coated Cobalt Ferrite Nanoparticles Prepared via Hydrothermal Method Nur Amirah Athirah, Zaini Nur Iffah Zulaikha, Azman Ling, Jin Kiong Rajan, Jose Muhammad Hafiz, Mazwir Mohamad Ashry, Jusoh HD28 Management. Industrial Management QC Physics The rapid advancement of communication technology has led to an increase in electromagnetic interference (EMI), or electromagnetic (EM) pollution. This is a cause for concern, as EMI can disrupt communication services, damage electronic equipment, and pose health risks. Regulatory bodies are working to develop standards for the safe use of wireless devices, but the problem of EMI is likely to continue to grow as the number of Internet of Thing (IoT) devices continues to increase. To address this issue, this study investigated the effectiveness of carbon-coated cobalt ferrite nanoparticles as a potential material for electromagnetic shielding. The synthesis of cobalt ferrite (CoFe2 O4) nanoparticles was successfully achieved using the co-precipitation method. Subsequently, a carbon coating was applied to the nanoparticles through a hydrothermal process using a 200 mL autoclave made of teflon-lined stainless steel. This process was carried out at a temperature of 180◦ C for a duration of 12 hours, with a heating rate of 8◦ C per minute. This study examined both uncoated and carbon-coated CoFe2 O4 nanoparticles at various ratios of glucose to CoFe2 O4 (1: 1, 2: 1, and 3: 1) using techniques such as X-ray diffraction (XRD), field emission scanning electron microscopy (FESEM), and higher resolution transmission electron microscopy (HRTEM) analysis. The XRD analysis revealed distinct and well-defined peaks corresponding to CoFe2 O4, indicating the successful synthesis of the nanoparticles. The crystallite size of the uncoated CoFe2 O4 nanoparticles was measured to be 11.47 nm, while for the carbon-coated CoFe2 O4, the average crystallite size was determined to be 14.15 nm through XRD analysis. The results obtained from the FTIR analysis were consistent with previous reports and confirmed the formation of spinel CoFe2 O4 nanoparticles, as suggested by published data. The morphological and structural properties of the prepared samples were further characterized using FESEM and HRTEM analysis, which demonstrated uniformity in both particle size distribution and morphology. Overall, the research findings indicated that the structure and properties of CoFe2 O4 nanoparticles were significantly influenced by the carbon coating process. Notably, the optimum ratio of carbon to CoFe2 O4 was found to be 2: 1, which resulted in the highest carbon thickness. The electromagnetic properties of the samples were evaluated using a vector network analyzer (VNA) and measured S-parameters in the frequency range of 8.2 to 12.4 GHz, known as the x-band region, suitable for radar applications. The sample with a carbon ratio of 2: 1 exhibited the highest total shielding effectiveness (SE) of 17 dB at approximately 10 GHz. As a conclusion, the carbon-coated CoFe2 O4 nanoparticles showed promising potential as an effective material for shielding against electromagnetic wave pollution, particularly when the carbon coating and filler composition reached an optimal point. Additionally, the shielding effectiveness performance of the sample could be further enhanced by incorporating a conductive polymer as an auxiliary material. Electromagnetics Academy 2023 Article PeerReviewed pdf en http://umpir.ump.edu.my/id/eprint/39156/1/Structural%20and%20Electromagnetic%20Shielding%20Effectiveness%20of%20Carbon-Coated%20Cobalt%20Ferrite%20Nanoparticles%20Prepared%20via%20Hydrothermal%20Method.pdf Nur Amirah Athirah, Zaini and Nur Iffah Zulaikha, Azman and Ling, Jin Kiong and Rajan, Jose and Muhammad Hafiz, Mazwir and Mohamad Ashry, Jusoh (2023) Structural and Electromagnetic Shielding Effectiveness of Carbon-Coated Cobalt Ferrite Nanoparticles Prepared via Hydrothermal Method. Progress In Electromagnetics Research C, 138. pp. 1-12. ISSN 1937-8718. (Published) http://dx.doi.org/10.2528/PIERC23022301 10.2528/PIERC23022301
spellingShingle HD28 Management. Industrial Management
QC Physics
Nur Amirah Athirah, Zaini
Nur Iffah Zulaikha, Azman
Ling, Jin Kiong
Rajan, Jose
Muhammad Hafiz, Mazwir
Mohamad Ashry, Jusoh
Structural and Electromagnetic Shielding Effectiveness of Carbon-Coated Cobalt Ferrite Nanoparticles Prepared via Hydrothermal Method
title Structural and Electromagnetic Shielding Effectiveness of Carbon-Coated Cobalt Ferrite Nanoparticles Prepared via Hydrothermal Method
title_full Structural and Electromagnetic Shielding Effectiveness of Carbon-Coated Cobalt Ferrite Nanoparticles Prepared via Hydrothermal Method
title_fullStr Structural and Electromagnetic Shielding Effectiveness of Carbon-Coated Cobalt Ferrite Nanoparticles Prepared via Hydrothermal Method
title_full_unstemmed Structural and Electromagnetic Shielding Effectiveness of Carbon-Coated Cobalt Ferrite Nanoparticles Prepared via Hydrothermal Method
title_short Structural and Electromagnetic Shielding Effectiveness of Carbon-Coated Cobalt Ferrite Nanoparticles Prepared via Hydrothermal Method
title_sort structural and electromagnetic shielding effectiveness of carbon-coated cobalt ferrite nanoparticles prepared via hydrothermal method
topic HD28 Management. Industrial Management
QC Physics
url http://umpir.ump.edu.my/id/eprint/39156/
http://umpir.ump.edu.my/id/eprint/39156/
http://umpir.ump.edu.my/id/eprint/39156/
http://umpir.ump.edu.my/id/eprint/39156/1/Structural%20and%20Electromagnetic%20Shielding%20Effectiveness%20of%20Carbon-Coated%20Cobalt%20Ferrite%20Nanoparticles%20Prepared%20via%20Hydrothermal%20Method.pdf