Investigating enhanced electrical conductivity for antenna applications through dual metallization on 3D printed SLA substrates

The advancement of 3D printing (additive manufacturing) has gained interest in variety of applications, especially for antenna fabrication. The demand for cheap, reliable, and high-performance antenna fabrication methods is essential in order to cope with the demand of wireless communications indust...

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Main Authors: Adam, Ahmad Nurhelmy, Yahaya, Irfan, Abu Bakar, Ahmad Adnan, Abdullah, Shahino Mah, Tamchek, Nizam, F. Alforidi, Ahmad, Alahmadi, Ahmed, Jamaluddin, Mohd Haizal, Mohd Azmi, Mohd Azraie, Mohd Ghazali, Mohd Ifwat
Format: Article
Language:English
Published: Elsevier 2024
Online Access:http://psasir.upm.edu.my/id/eprint/114362/
http://psasir.upm.edu.my/id/eprint/114362/1/114362.pdf
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author Adam, Ahmad Nurhelmy
Yahaya, Irfan
Abu Bakar, Ahmad Adnan
Abdullah, Shahino Mah
Tamchek, Nizam
F. Alforidi, Ahmad
Alahmadi, Ahmed
Jamaluddin, Mohd Haizal
Mohd Azmi, Mohd Azraie
Mohd Ghazali, Mohd Ifwat
author_facet Adam, Ahmad Nurhelmy
Yahaya, Irfan
Abu Bakar, Ahmad Adnan
Abdullah, Shahino Mah
Tamchek, Nizam
F. Alforidi, Ahmad
Alahmadi, Ahmed
Jamaluddin, Mohd Haizal
Mohd Azmi, Mohd Azraie
Mohd Ghazali, Mohd Ifwat
author_sort Adam, Ahmad Nurhelmy
building UPM Institutional Repository
collection Online Access
description The advancement of 3D printing (additive manufacturing) has gained interest in variety of applications, especially for antenna fabrication. The demand for cheap, reliable, and high-performance antenna fabrication methods is essential in order to cope with the demand of wireless communications industry. In this work, the focus was emphasized on enhancing the electrical conductivity of the 3D printed substrates fabricated by stereolithography (SLA) 3D printer. The 3D printed substrate went through a dual metallization approach, involving sputtering and electrodeposition techniques for the fabrication of conductive metal layers. The parameters for the sputtering were fixed for all the substrate while current density during electrodeposition process was varied at 25 %, 50 %, 75 % and 100 % from recommended value of current. The results showed that the current density during the electrodeposition determined the conductivity performance of the metal layers and established a significant correlation with the surface morphological. Three different frequencies comprised of 2.4 GHz, 3.5 GHz and 5.0 GHz were selected to simulate and fabricate a microstrip patch antenna using the optimized current density which was valued optimal at 75 % (52.5 mA). The percentage of accuracy between simulated and measured frequencies of antenna, portrayed that the measured values were slightly higher than the simulated approximately about 5.14 to 6.67 %. Therefore, the integration of additive manufacturing or 3D printing techniques for antenna could address the critical necessity for fast and economical solution in wireless systems.
first_indexed 2025-11-15T14:21:07Z
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institution Universiti Putra Malaysia
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language English
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publisher Elsevier
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spelling upm-1143622025-01-16T08:28:41Z http://psasir.upm.edu.my/id/eprint/114362/ Investigating enhanced electrical conductivity for antenna applications through dual metallization on 3D printed SLA substrates Adam, Ahmad Nurhelmy Yahaya, Irfan Abu Bakar, Ahmad Adnan Abdullah, Shahino Mah Tamchek, Nizam F. Alforidi, Ahmad Alahmadi, Ahmed Jamaluddin, Mohd Haizal Mohd Azmi, Mohd Azraie Mohd Ghazali, Mohd Ifwat The advancement of 3D printing (additive manufacturing) has gained interest in variety of applications, especially for antenna fabrication. The demand for cheap, reliable, and high-performance antenna fabrication methods is essential in order to cope with the demand of wireless communications industry. In this work, the focus was emphasized on enhancing the electrical conductivity of the 3D printed substrates fabricated by stereolithography (SLA) 3D printer. The 3D printed substrate went through a dual metallization approach, involving sputtering and electrodeposition techniques for the fabrication of conductive metal layers. The parameters for the sputtering were fixed for all the substrate while current density during electrodeposition process was varied at 25 %, 50 %, 75 % and 100 % from recommended value of current. The results showed that the current density during the electrodeposition determined the conductivity performance of the metal layers and established a significant correlation with the surface morphological. Three different frequencies comprised of 2.4 GHz, 3.5 GHz and 5.0 GHz were selected to simulate and fabricate a microstrip patch antenna using the optimized current density which was valued optimal at 75 % (52.5 mA). The percentage of accuracy between simulated and measured frequencies of antenna, portrayed that the measured values were slightly higher than the simulated approximately about 5.14 to 6.67 %. Therefore, the integration of additive manufacturing or 3D printing techniques for antenna could address the critical necessity for fast and economical solution in wireless systems. Elsevier 2024-12 Article PeerReviewed text en cc_by_4 http://psasir.upm.edu.my/id/eprint/114362/1/114362.pdf Adam, Ahmad Nurhelmy and Yahaya, Irfan and Abu Bakar, Ahmad Adnan and Abdullah, Shahino Mah and Tamchek, Nizam and F. Alforidi, Ahmad and Alahmadi, Ahmed and Jamaluddin, Mohd Haizal and Mohd Azmi, Mohd Azraie and Mohd Ghazali, Mohd Ifwat (2024) Investigating enhanced electrical conductivity for antenna applications through dual metallization on 3D printed SLA substrates. Results in Engineering, 24. art. no. 103274. pp. 1-14. ISSN 2590-1230; eISSN: 2590-1230 https://linkinghub.elsevier.com/retrieve/pii/S2590123024015287 10.1016/j.rineng.2024.103274
spellingShingle Adam, Ahmad Nurhelmy
Yahaya, Irfan
Abu Bakar, Ahmad Adnan
Abdullah, Shahino Mah
Tamchek, Nizam
F. Alforidi, Ahmad
Alahmadi, Ahmed
Jamaluddin, Mohd Haizal
Mohd Azmi, Mohd Azraie
Mohd Ghazali, Mohd Ifwat
Investigating enhanced electrical conductivity for antenna applications through dual metallization on 3D printed SLA substrates
title Investigating enhanced electrical conductivity for antenna applications through dual metallization on 3D printed SLA substrates
title_full Investigating enhanced electrical conductivity for antenna applications through dual metallization on 3D printed SLA substrates
title_fullStr Investigating enhanced electrical conductivity for antenna applications through dual metallization on 3D printed SLA substrates
title_full_unstemmed Investigating enhanced electrical conductivity for antenna applications through dual metallization on 3D printed SLA substrates
title_short Investigating enhanced electrical conductivity for antenna applications through dual metallization on 3D printed SLA substrates
title_sort investigating enhanced electrical conductivity for antenna applications through dual metallization on 3d printed sla substrates
url http://psasir.upm.edu.my/id/eprint/114362/
http://psasir.upm.edu.my/id/eprint/114362/
http://psasir.upm.edu.my/id/eprint/114362/
http://psasir.upm.edu.my/id/eprint/114362/1/114362.pdf