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High-Entropy Borides under Extreme Environment of Pressures and Temperatures

The high-entropy transition metal borides containing a random distribution of five or more constituent metallic elements offer novel opportunities in designing materials that show crystalline phase stability, high strength, and thermal oxidation resistance under extreme conditions. We present a comp...

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Autores principales: Iwan, Seth, Lin, Chia-Min, Perreault, Christopher, Chakrabarty, Kallol, Chen, Cheng-Chien, Vohra, Yogesh, Hrubiak, Rostislav, Shen, Guoyin, Velisavljevic, Nenad
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9101925/
https://www.ncbi.nlm.nih.gov/pubmed/35591574
http://dx.doi.org/10.3390/ma15093239
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author Iwan, Seth
Lin, Chia-Min
Perreault, Christopher
Chakrabarty, Kallol
Chen, Cheng-Chien
Vohra, Yogesh
Hrubiak, Rostislav
Shen, Guoyin
Velisavljevic, Nenad
author_facet Iwan, Seth
Lin, Chia-Min
Perreault, Christopher
Chakrabarty, Kallol
Chen, Cheng-Chien
Vohra, Yogesh
Hrubiak, Rostislav
Shen, Guoyin
Velisavljevic, Nenad
author_sort Iwan, Seth
collection PubMed
description The high-entropy transition metal borides containing a random distribution of five or more constituent metallic elements offer novel opportunities in designing materials that show crystalline phase stability, high strength, and thermal oxidation resistance under extreme conditions. We present a comprehensive theoretical and experimental investigation of prototypical high-entropy boride (HEB) materials such as (Hf, Mo, Nb, Ta, Ti)B(2) and (Hf, Mo, Nb, Ta, Zr)B(2) under extreme environments of pressures and temperatures. The theoretical tools include modeling elastic properties by special quasi-random structures that predict a bulk modulus of 288 GPa and a shear modulus of 215 GPa at ambient conditions. HEB samples were synthesized under high pressures and high temperatures and studied to 9.5 GPa and 2273 K in a large-volume pressure cell. The thermal equation of state measurement yielded a bulk modulus of 276 GPa, in excellent agreement with theory. The measured compressive yield strength by radial X-ray diffraction technique in a diamond anvil cell was 28 GPa at a pressure of 65 GPa, which is a significant fraction of the shear modulus at high pressures. The high compressive strength and phase stability of this material under high pressures and high temperatures make it an ideal candidate for application as a structural material in nuclear and aerospace fields.
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spelling pubmed-91019252022-05-14 High-Entropy Borides under Extreme Environment of Pressures and Temperatures Iwan, Seth Lin, Chia-Min Perreault, Christopher Chakrabarty, Kallol Chen, Cheng-Chien Vohra, Yogesh Hrubiak, Rostislav Shen, Guoyin Velisavljevic, Nenad Materials (Basel) Article The high-entropy transition metal borides containing a random distribution of five or more constituent metallic elements offer novel opportunities in designing materials that show crystalline phase stability, high strength, and thermal oxidation resistance under extreme conditions. We present a comprehensive theoretical and experimental investigation of prototypical high-entropy boride (HEB) materials such as (Hf, Mo, Nb, Ta, Ti)B(2) and (Hf, Mo, Nb, Ta, Zr)B(2) under extreme environments of pressures and temperatures. The theoretical tools include modeling elastic properties by special quasi-random structures that predict a bulk modulus of 288 GPa and a shear modulus of 215 GPa at ambient conditions. HEB samples were synthesized under high pressures and high temperatures and studied to 9.5 GPa and 2273 K in a large-volume pressure cell. The thermal equation of state measurement yielded a bulk modulus of 276 GPa, in excellent agreement with theory. The measured compressive yield strength by radial X-ray diffraction technique in a diamond anvil cell was 28 GPa at a pressure of 65 GPa, which is a significant fraction of the shear modulus at high pressures. The high compressive strength and phase stability of this material under high pressures and high temperatures make it an ideal candidate for application as a structural material in nuclear and aerospace fields. MDPI 2022-04-30 /pmc/articles/PMC9101925/ /pubmed/35591574 http://dx.doi.org/10.3390/ma15093239 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
Iwan, Seth
Lin, Chia-Min
Perreault, Christopher
Chakrabarty, Kallol
Chen, Cheng-Chien
Vohra, Yogesh
Hrubiak, Rostislav
Shen, Guoyin
Velisavljevic, Nenad
High-Entropy Borides under Extreme Environment of Pressures and Temperatures
title High-Entropy Borides under Extreme Environment of Pressures and Temperatures
title_full High-Entropy Borides under Extreme Environment of Pressures and Temperatures
title_fullStr High-Entropy Borides under Extreme Environment of Pressures and Temperatures
title_full_unstemmed High-Entropy Borides under Extreme Environment of Pressures and Temperatures
title_short High-Entropy Borides under Extreme Environment of Pressures and Temperatures
title_sort high-entropy borides under extreme environment of pressures and temperatures
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9101925/
https://www.ncbi.nlm.nih.gov/pubmed/35591574
http://dx.doi.org/10.3390/ma15093239
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