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Resistance against Penetration of Electromagnetic Radiation for Ultra-light Cu/Ni-Coated Polyester Fibrous Materials

Resistance against penetration of various rays including electromagnetic waves (EM), infrared rays (IR), and ultraviolet rays (UV) has been realized by using copper (Cu)-coated fabrics. However, the corrosion of the Cu on coated fabrics influenced the shielding effectiveness of the various rays. Bes...

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Autores principales: Yang, Kai, Periyasamy, Aravin Prince, Venkataraman, Mohanapriya, Militky, Jiri, Kremenakova, Dana, Vecernik, Josef, Pulíček, Roman
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7564423/
https://www.ncbi.nlm.nih.gov/pubmed/32899520
http://dx.doi.org/10.3390/polym12092029
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author Yang, Kai
Periyasamy, Aravin Prince
Venkataraman, Mohanapriya
Militky, Jiri
Kremenakova, Dana
Vecernik, Josef
Pulíček, Roman
author_facet Yang, Kai
Periyasamy, Aravin Prince
Venkataraman, Mohanapriya
Militky, Jiri
Kremenakova, Dana
Vecernik, Josef
Pulíček, Roman
author_sort Yang, Kai
collection PubMed
description Resistance against penetration of various rays including electromagnetic waves (EM), infrared rays (IR), and ultraviolet rays (UV) has been realized by using copper (Cu)-coated fabrics. However, the corrosion of the Cu on coated fabrics influenced the shielding effectiveness of the various rays. Besides, the metal-coated fabrics have high density and are unbreathable. This work aims to solve the problem by incorporating nickel (Ni) into the Cu coating on the ultra-light polyester fibrous materials (Milife(®) composite nonwoven fabric—10 g/m(2), abbreviation Milife) via electroless plating. The electromagnetic interference (EMI), IR test, ultraviolet protection factor (UPF), water contact angle, and air permeability of the Cu/Ni-coated Milife fabric were measured. All the samples were assumed as ultra-light and breathable by obtaining the similar fabric density (~10.57 g/m(2)) and large air permeability (600–1050 mm/s). The Cu/Ni deposition on the Milife fabrics only covered the fibers. The EM shielding effectiveness (SE) decreased from 26 to 20 dB, the IR reflectance (R(infrared)) decreased from 0.570 to 0.473 with increasing w(Ni) from 0 to 19.5 wt %, while the w(Ni) improved the UPF from 9 to 48. Besides, addition of Ni changed the Cu/Ni-coated Milife fabric from hydrophilicity to the hydrophobicity by observing WCA from 77.7° to 114°.
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spelling pubmed-75644232020-10-28 Resistance against Penetration of Electromagnetic Radiation for Ultra-light Cu/Ni-Coated Polyester Fibrous Materials Yang, Kai Periyasamy, Aravin Prince Venkataraman, Mohanapriya Militky, Jiri Kremenakova, Dana Vecernik, Josef Pulíček, Roman Polymers (Basel) Article Resistance against penetration of various rays including electromagnetic waves (EM), infrared rays (IR), and ultraviolet rays (UV) has been realized by using copper (Cu)-coated fabrics. However, the corrosion of the Cu on coated fabrics influenced the shielding effectiveness of the various rays. Besides, the metal-coated fabrics have high density and are unbreathable. This work aims to solve the problem by incorporating nickel (Ni) into the Cu coating on the ultra-light polyester fibrous materials (Milife(®) composite nonwoven fabric—10 g/m(2), abbreviation Milife) via electroless plating. The electromagnetic interference (EMI), IR test, ultraviolet protection factor (UPF), water contact angle, and air permeability of the Cu/Ni-coated Milife fabric were measured. All the samples were assumed as ultra-light and breathable by obtaining the similar fabric density (~10.57 g/m(2)) and large air permeability (600–1050 mm/s). The Cu/Ni deposition on the Milife fabrics only covered the fibers. The EM shielding effectiveness (SE) decreased from 26 to 20 dB, the IR reflectance (R(infrared)) decreased from 0.570 to 0.473 with increasing w(Ni) from 0 to 19.5 wt %, while the w(Ni) improved the UPF from 9 to 48. Besides, addition of Ni changed the Cu/Ni-coated Milife fabric from hydrophilicity to the hydrophobicity by observing WCA from 77.7° to 114°. MDPI 2020-09-05 /pmc/articles/PMC7564423/ /pubmed/32899520 http://dx.doi.org/10.3390/polym12092029 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Yang, Kai
Periyasamy, Aravin Prince
Venkataraman, Mohanapriya
Militky, Jiri
Kremenakova, Dana
Vecernik, Josef
Pulíček, Roman
Resistance against Penetration of Electromagnetic Radiation for Ultra-light Cu/Ni-Coated Polyester Fibrous Materials
title Resistance against Penetration of Electromagnetic Radiation for Ultra-light Cu/Ni-Coated Polyester Fibrous Materials
title_full Resistance against Penetration of Electromagnetic Radiation for Ultra-light Cu/Ni-Coated Polyester Fibrous Materials
title_fullStr Resistance against Penetration of Electromagnetic Radiation for Ultra-light Cu/Ni-Coated Polyester Fibrous Materials
title_full_unstemmed Resistance against Penetration of Electromagnetic Radiation for Ultra-light Cu/Ni-Coated Polyester Fibrous Materials
title_short Resistance against Penetration of Electromagnetic Radiation for Ultra-light Cu/Ni-Coated Polyester Fibrous Materials
title_sort resistance against penetration of electromagnetic radiation for ultra-light cu/ni-coated polyester fibrous materials
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7564423/
https://www.ncbi.nlm.nih.gov/pubmed/32899520
http://dx.doi.org/10.3390/polym12092029
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