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Synthesis and Thermal Oxidation Resistance of Boron-Rich Boron–Carbide Material

A boron-rich boron–carbide material (B(4+δ)C) was synthesized by spark plasma sintering of a ball-milled mixture of high-purity boron powder and graphitic carbon at a pressure of 7 MPa and a temperature of 1930 °C. This high-pressure, high-temperature synthesized material was recovered and character...

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Autores principales: Iwan, Seth, Sutton, Wesley, Baker, Paul A., Sereika, Raimundas, Vohra, Yogesh K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10573354/
https://www.ncbi.nlm.nih.gov/pubmed/37834663
http://dx.doi.org/10.3390/ma16196526
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author Iwan, Seth
Sutton, Wesley
Baker, Paul A.
Sereika, Raimundas
Vohra, Yogesh K.
author_facet Iwan, Seth
Sutton, Wesley
Baker, Paul A.
Sereika, Raimundas
Vohra, Yogesh K.
author_sort Iwan, Seth
collection PubMed
description A boron-rich boron–carbide material (B(4+δ)C) was synthesized by spark plasma sintering of a ball-milled mixture of high-purity boron powder and graphitic carbon at a pressure of 7 MPa and a temperature of 1930 °C. This high-pressure, high-temperature synthesized material was recovered and characterized by X-ray diffraction, X-ray photoelectron spectroscopy, Raman spectroscopy, Vickers hardness measurements, and thermal oxidation studies. The X-ray diffraction studies revealed a single-phase rhombohedral structure (space group R-3m) with lattice parameters in hexagonal representation as a = 5.609 ± 0.007 Å and c = 12.082 ± 0.02 Å. The experimental lattice parameters result in a value of δ = 0.55, or the composition of the synthesized compound as B(4.55)C. The high-resolution scans of boron binding energy reveal the existence of a B-C bond at 188.5 eV. Raman spectroscopy reveals the existence of a 386 cm(−1) vibrational mode representative of C-B-B linear chain formation due to excess boron in the lattice. The measured Vickers microhardness at a load of 200 gf shows a high hardness value of 33.8 ± 2.3 GPa. Thermal gravimetric studies on B(4.55)C were conducted at a temperature of 1300 °C in a compressed dry air environment, and its behavior is compared to other high-temperature ceramic materials such as high-entropy transition metal boride. The high neutron absorption cross section, high melting point, high mechanical strength, and thermal oxidation resistance make this material ideal for applications in extreme environments.
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spelling pubmed-105733542023-10-14 Synthesis and Thermal Oxidation Resistance of Boron-Rich Boron–Carbide Material Iwan, Seth Sutton, Wesley Baker, Paul A. Sereika, Raimundas Vohra, Yogesh K. Materials (Basel) Communication A boron-rich boron–carbide material (B(4+δ)C) was synthesized by spark plasma sintering of a ball-milled mixture of high-purity boron powder and graphitic carbon at a pressure of 7 MPa and a temperature of 1930 °C. This high-pressure, high-temperature synthesized material was recovered and characterized by X-ray diffraction, X-ray photoelectron spectroscopy, Raman spectroscopy, Vickers hardness measurements, and thermal oxidation studies. The X-ray diffraction studies revealed a single-phase rhombohedral structure (space group R-3m) with lattice parameters in hexagonal representation as a = 5.609 ± 0.007 Å and c = 12.082 ± 0.02 Å. The experimental lattice parameters result in a value of δ = 0.55, or the composition of the synthesized compound as B(4.55)C. The high-resolution scans of boron binding energy reveal the existence of a B-C bond at 188.5 eV. Raman spectroscopy reveals the existence of a 386 cm(−1) vibrational mode representative of C-B-B linear chain formation due to excess boron in the lattice. The measured Vickers microhardness at a load of 200 gf shows a high hardness value of 33.8 ± 2.3 GPa. Thermal gravimetric studies on B(4.55)C were conducted at a temperature of 1300 °C in a compressed dry air environment, and its behavior is compared to other high-temperature ceramic materials such as high-entropy transition metal boride. The high neutron absorption cross section, high melting point, high mechanical strength, and thermal oxidation resistance make this material ideal for applications in extreme environments. MDPI 2023-10-01 /pmc/articles/PMC10573354/ /pubmed/37834663 http://dx.doi.org/10.3390/ma16196526 Text en © 2023 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 Communication
Iwan, Seth
Sutton, Wesley
Baker, Paul A.
Sereika, Raimundas
Vohra, Yogesh K.
Synthesis and Thermal Oxidation Resistance of Boron-Rich Boron–Carbide Material
title Synthesis and Thermal Oxidation Resistance of Boron-Rich Boron–Carbide Material
title_full Synthesis and Thermal Oxidation Resistance of Boron-Rich Boron–Carbide Material
title_fullStr Synthesis and Thermal Oxidation Resistance of Boron-Rich Boron–Carbide Material
title_full_unstemmed Synthesis and Thermal Oxidation Resistance of Boron-Rich Boron–Carbide Material
title_short Synthesis and Thermal Oxidation Resistance of Boron-Rich Boron–Carbide Material
title_sort synthesis and thermal oxidation resistance of boron-rich boron–carbide material
topic Communication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10573354/
https://www.ncbi.nlm.nih.gov/pubmed/37834663
http://dx.doi.org/10.3390/ma16196526
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