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Novel Hybrid Nanomaterials Based on Poly-N-Phenylanthranilic Acid and Magnetic Nanoparticles with Enhanced Saturation Magnetization

A one-step preparation method for cobalt- and iron-containing nanomaterials based on poly-N-phenylanthranilic acid (P-N-PAA) and magnetic nanoparticles (MNP) was developed for the first time. To synthesize the MNP/P-N-PAA nanocomposites, the precursor is obtained by dissolving a Co (II) salt in a ma...

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Autores principales: Ozkan, Sveta Zhiraslanovna, Kostev, Aleksandr Ivanovich, Chernavskii, Petr Aleksandrovich, Karpacheva, Galina Petrovna
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9320828/
https://www.ncbi.nlm.nih.gov/pubmed/35890710
http://dx.doi.org/10.3390/polym14142935
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author Ozkan, Sveta Zhiraslanovna
Kostev, Aleksandr Ivanovich
Chernavskii, Petr Aleksandrovich
Karpacheva, Galina Petrovna
author_facet Ozkan, Sveta Zhiraslanovna
Kostev, Aleksandr Ivanovich
Chernavskii, Petr Aleksandrovich
Karpacheva, Galina Petrovna
author_sort Ozkan, Sveta Zhiraslanovna
collection PubMed
description A one-step preparation method for cobalt- and iron-containing nanomaterials based on poly-N-phenylanthranilic acid (P-N-PAA) and magnetic nanoparticles (MNP) was developed for the first time. To synthesize the MNP/P-N-PAA nanocomposites, the precursor is obtained by dissolving a Co (II) salt in a magnetic fluid based on Fe(3)O(4)/P-N-PAA with a core-shell structure. During IR heating of the precursor in an inert atmosphere at T = 700–800 °C, cobalt interacts with Fe(3)O(4) reduction products, which results in the formation of a mixture of spherical Co-Fe, γ-Fe, β-Co and Fe(3)C nanoparticles of various sizes in the ranges of 20 < d < 50 nm and 120 < d < 400 nm. The phase composition of the MNP/P-N-PAA nanocomposites depends significantly on the cobalt concentration. The reduction of metals occurs due to the hydrogen released during the dehydrogenation of phenylenamine units of the polymer chain. The introduction of 10–30 wt% cobalt in the composition of nanocomposites leads to a significant increase in the saturation magnetization of MNP/P-N-PAA (M(S) = 81.58–149.67 emu/g) compared to neat Fe(3)O(4)/P-N-PAA (M(S) = 18.41–27.58 emu/g). The squareness constant of the hysteresis loop is κ(S) = M(R)/M(S) = 0.040–0.209. The electrical conductivity of the MNP/P-N-PAA nanomaterials does not depend much on frequency and reaches 1.2 × 10(−1) S/cm. In the argon flow at 1000 °C, the residue is 77–88%.
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spelling pubmed-93208282022-07-27 Novel Hybrid Nanomaterials Based on Poly-N-Phenylanthranilic Acid and Magnetic Nanoparticles with Enhanced Saturation Magnetization Ozkan, Sveta Zhiraslanovna Kostev, Aleksandr Ivanovich Chernavskii, Petr Aleksandrovich Karpacheva, Galina Petrovna Polymers (Basel) Article A one-step preparation method for cobalt- and iron-containing nanomaterials based on poly-N-phenylanthranilic acid (P-N-PAA) and magnetic nanoparticles (MNP) was developed for the first time. To synthesize the MNP/P-N-PAA nanocomposites, the precursor is obtained by dissolving a Co (II) salt in a magnetic fluid based on Fe(3)O(4)/P-N-PAA with a core-shell structure. During IR heating of the precursor in an inert atmosphere at T = 700–800 °C, cobalt interacts with Fe(3)O(4) reduction products, which results in the formation of a mixture of spherical Co-Fe, γ-Fe, β-Co and Fe(3)C nanoparticles of various sizes in the ranges of 20 < d < 50 nm and 120 < d < 400 nm. The phase composition of the MNP/P-N-PAA nanocomposites depends significantly on the cobalt concentration. The reduction of metals occurs due to the hydrogen released during the dehydrogenation of phenylenamine units of the polymer chain. The introduction of 10–30 wt% cobalt in the composition of nanocomposites leads to a significant increase in the saturation magnetization of MNP/P-N-PAA (M(S) = 81.58–149.67 emu/g) compared to neat Fe(3)O(4)/P-N-PAA (M(S) = 18.41–27.58 emu/g). The squareness constant of the hysteresis loop is κ(S) = M(R)/M(S) = 0.040–0.209. The electrical conductivity of the MNP/P-N-PAA nanomaterials does not depend much on frequency and reaches 1.2 × 10(−1) S/cm. In the argon flow at 1000 °C, the residue is 77–88%. MDPI 2022-07-20 /pmc/articles/PMC9320828/ /pubmed/35890710 http://dx.doi.org/10.3390/polym14142935 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ozkan, Sveta Zhiraslanovna
Kostev, Aleksandr Ivanovich
Chernavskii, Petr Aleksandrovich
Karpacheva, Galina Petrovna
Novel Hybrid Nanomaterials Based on Poly-N-Phenylanthranilic Acid and Magnetic Nanoparticles with Enhanced Saturation Magnetization
title Novel Hybrid Nanomaterials Based on Poly-N-Phenylanthranilic Acid and Magnetic Nanoparticles with Enhanced Saturation Magnetization
title_full Novel Hybrid Nanomaterials Based on Poly-N-Phenylanthranilic Acid and Magnetic Nanoparticles with Enhanced Saturation Magnetization
title_fullStr Novel Hybrid Nanomaterials Based on Poly-N-Phenylanthranilic Acid and Magnetic Nanoparticles with Enhanced Saturation Magnetization
title_full_unstemmed Novel Hybrid Nanomaterials Based on Poly-N-Phenylanthranilic Acid and Magnetic Nanoparticles with Enhanced Saturation Magnetization
title_short Novel Hybrid Nanomaterials Based on Poly-N-Phenylanthranilic Acid and Magnetic Nanoparticles with Enhanced Saturation Magnetization
title_sort novel hybrid nanomaterials based on poly-n-phenylanthranilic acid and magnetic nanoparticles with enhanced saturation magnetization
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9320828/
https://www.ncbi.nlm.nih.gov/pubmed/35890710
http://dx.doi.org/10.3390/polym14142935
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