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Physicochemical and Mechanical Performance of Freestanding Boron-Doped Diamond Nanosheets Coated with C:H:N:O Plasma Polymer

The physicochemical and mechanical properties of thin and freestanding heavy boron-doped diamond (BDD) nanosheets coated with a thin C:H:N:O plasma polymer were studied. First, diamond nanosheets were grown and doped with boron on a Ta substrate using the microwave plasma-enhanced chemical vapor dep...

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Autores principales: Rycewicz, Michał, Macewicz, Łukasz, Kratochvil, Jiri, Stanisławska, Alicja, Ficek, Mateusz, Sawczak, Mirosław, Stranak, Vitezslav, Szkodo, Marek, Bogdanowicz, Robert
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7215835/
https://www.ncbi.nlm.nih.gov/pubmed/32326555
http://dx.doi.org/10.3390/ma13081861
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author Rycewicz, Michał
Macewicz, Łukasz
Kratochvil, Jiri
Stanisławska, Alicja
Ficek, Mateusz
Sawczak, Mirosław
Stranak, Vitezslav
Szkodo, Marek
Bogdanowicz, Robert
author_facet Rycewicz, Michał
Macewicz, Łukasz
Kratochvil, Jiri
Stanisławska, Alicja
Ficek, Mateusz
Sawczak, Mirosław
Stranak, Vitezslav
Szkodo, Marek
Bogdanowicz, Robert
author_sort Rycewicz, Michał
collection PubMed
description The physicochemical and mechanical properties of thin and freestanding heavy boron-doped diamond (BDD) nanosheets coated with a thin C:H:N:O plasma polymer were studied. First, diamond nanosheets were grown and doped with boron on a Ta substrate using the microwave plasma-enhanced chemical vapor deposition technique (MPECVD). Next, the BDD/Ta samples were covered with nylon 6.6 to improve their stability in harsh environments and flexibility during elastic deformations. Plasma polymer films with a thickness of the 500–1000 nm were obtained by magnetron sputtering of a bulk target of nylon 6.6. Hydrophilic nitrogen-rich C:H:N:O was prepared by the sputtering of nylon 6.6. C:H:N:O as a film with high surface energy improves adhesion in ambient conditions. The nylon–diamond interface was perfectly formed, and hence, the adhesion behavior could be attributed to the dissipation of viscoelastic energy originating from irreversible energy loss in soft polymer structure. Diamond surface heterogeneities have been shown to pin the contact edge, indicating that the retraction process causes instantaneous fluctuations on the surface in specified microscale regions. The observed Raman bands at 390, 275, and 220 cm(−1) were weak; therefore, the obtained films exhibited a low level of nylon 6 polymerization and short-distance arrangement, indicating crystal symmetry and interchain interactions. The mechanical properties of the nylon-on-diamond were determined by a nanoindentation test in multiload mode. Increasing the maximum load during the nanoindentation test resulted in a decreased hardness of the fabricated structure. The integration of freestanding diamond nanosheets will make it possible to design flexible chemical multielectrode sensors.
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spelling pubmed-72158352020-05-22 Physicochemical and Mechanical Performance of Freestanding Boron-Doped Diamond Nanosheets Coated with C:H:N:O Plasma Polymer Rycewicz, Michał Macewicz, Łukasz Kratochvil, Jiri Stanisławska, Alicja Ficek, Mateusz Sawczak, Mirosław Stranak, Vitezslav Szkodo, Marek Bogdanowicz, Robert Materials (Basel) Article The physicochemical and mechanical properties of thin and freestanding heavy boron-doped diamond (BDD) nanosheets coated with a thin C:H:N:O plasma polymer were studied. First, diamond nanosheets were grown and doped with boron on a Ta substrate using the microwave plasma-enhanced chemical vapor deposition technique (MPECVD). Next, the BDD/Ta samples were covered with nylon 6.6 to improve their stability in harsh environments and flexibility during elastic deformations. Plasma polymer films with a thickness of the 500–1000 nm were obtained by magnetron sputtering of a bulk target of nylon 6.6. Hydrophilic nitrogen-rich C:H:N:O was prepared by the sputtering of nylon 6.6. C:H:N:O as a film with high surface energy improves adhesion in ambient conditions. The nylon–diamond interface was perfectly formed, and hence, the adhesion behavior could be attributed to the dissipation of viscoelastic energy originating from irreversible energy loss in soft polymer structure. Diamond surface heterogeneities have been shown to pin the contact edge, indicating that the retraction process causes instantaneous fluctuations on the surface in specified microscale regions. The observed Raman bands at 390, 275, and 220 cm(−1) were weak; therefore, the obtained films exhibited a low level of nylon 6 polymerization and short-distance arrangement, indicating crystal symmetry and interchain interactions. The mechanical properties of the nylon-on-diamond were determined by a nanoindentation test in multiload mode. Increasing the maximum load during the nanoindentation test resulted in a decreased hardness of the fabricated structure. The integration of freestanding diamond nanosheets will make it possible to design flexible chemical multielectrode sensors. MDPI 2020-04-15 /pmc/articles/PMC7215835/ /pubmed/32326555 http://dx.doi.org/10.3390/ma13081861 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
Rycewicz, Michał
Macewicz, Łukasz
Kratochvil, Jiri
Stanisławska, Alicja
Ficek, Mateusz
Sawczak, Mirosław
Stranak, Vitezslav
Szkodo, Marek
Bogdanowicz, Robert
Physicochemical and Mechanical Performance of Freestanding Boron-Doped Diamond Nanosheets Coated with C:H:N:O Plasma Polymer
title Physicochemical and Mechanical Performance of Freestanding Boron-Doped Diamond Nanosheets Coated with C:H:N:O Plasma Polymer
title_full Physicochemical and Mechanical Performance of Freestanding Boron-Doped Diamond Nanosheets Coated with C:H:N:O Plasma Polymer
title_fullStr Physicochemical and Mechanical Performance of Freestanding Boron-Doped Diamond Nanosheets Coated with C:H:N:O Plasma Polymer
title_full_unstemmed Physicochemical and Mechanical Performance of Freestanding Boron-Doped Diamond Nanosheets Coated with C:H:N:O Plasma Polymer
title_short Physicochemical and Mechanical Performance of Freestanding Boron-Doped Diamond Nanosheets Coated with C:H:N:O Plasma Polymer
title_sort physicochemical and mechanical performance of freestanding boron-doped diamond nanosheets coated with c:h:n:o plasma polymer
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7215835/
https://www.ncbi.nlm.nih.gov/pubmed/32326555
http://dx.doi.org/10.3390/ma13081861
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