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Enhanced strength of nano-polycrystalline diamond by introducing boron carbide interlayers at the grain boundaries

Polycrystalline diamond with high mechanical properties and excellent thermal stability plays an important role in industry and materials science. However, the increased inherent brittle strength with the increase of hardness has severely limited its further widespread application. In this work, we...

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Autores principales: Zhao, Bo, Zhang, Shengya, Duan, Shuai, Song, Jingyan, Li, Xiangjun, Yang, Bingchao, Chen, Xin, Wang, Chao, Yi, Wencai, Wang, Zhixiu, Liu, Xiaobing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9418207/
https://www.ncbi.nlm.nih.gov/pubmed/36133237
http://dx.doi.org/10.1039/c9na00699k
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author Zhao, Bo
Zhang, Shengya
Duan, Shuai
Song, Jingyan
Li, Xiangjun
Yang, Bingchao
Chen, Xin
Wang, Chao
Yi, Wencai
Wang, Zhixiu
Liu, Xiaobing
author_facet Zhao, Bo
Zhang, Shengya
Duan, Shuai
Song, Jingyan
Li, Xiangjun
Yang, Bingchao
Chen, Xin
Wang, Chao
Yi, Wencai
Wang, Zhixiu
Liu, Xiaobing
author_sort Zhao, Bo
collection PubMed
description Polycrystalline diamond with high mechanical properties and excellent thermal stability plays an important role in industry and materials science. However, the increased inherent brittle strength with the increase of hardness has severely limited its further widespread application. In this work, we produced well-sintered nano-polycrystalline (np) diamond by directly sintering fine diamond powders with the boron carbide (B(4)C) additive at high pressure and high temperatures. The highest hardness value of up to ∼90 GPa was observed in the np-diamond (consisting of fine grains with a size of 16 nm) by adding 5 wt% B(4)C at 18 GPa and 2237 K. Moreover, our results reveal that the produced samples have shown noticeably enhanced strength and toughness (18.37 MPa m(0.5)) with the assistance of the soft phase at the grain boundaries, higher than that of the hardest known nano-twined diamond by ∼24% and a little greater than that of the toughest CVD diamond (18 MPa m(0.5)). This study offers a novel functional approach in improving and controlling the hardness and stiffness of polycrystalline diamond.
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spelling pubmed-94182072022-09-20 Enhanced strength of nano-polycrystalline diamond by introducing boron carbide interlayers at the grain boundaries Zhao, Bo Zhang, Shengya Duan, Shuai Song, Jingyan Li, Xiangjun Yang, Bingchao Chen, Xin Wang, Chao Yi, Wencai Wang, Zhixiu Liu, Xiaobing Nanoscale Adv Chemistry Polycrystalline diamond with high mechanical properties and excellent thermal stability plays an important role in industry and materials science. However, the increased inherent brittle strength with the increase of hardness has severely limited its further widespread application. In this work, we produced well-sintered nano-polycrystalline (np) diamond by directly sintering fine diamond powders with the boron carbide (B(4)C) additive at high pressure and high temperatures. The highest hardness value of up to ∼90 GPa was observed in the np-diamond (consisting of fine grains with a size of 16 nm) by adding 5 wt% B(4)C at 18 GPa and 2237 K. Moreover, our results reveal that the produced samples have shown noticeably enhanced strength and toughness (18.37 MPa m(0.5)) with the assistance of the soft phase at the grain boundaries, higher than that of the hardest known nano-twined diamond by ∼24% and a little greater than that of the toughest CVD diamond (18 MPa m(0.5)). This study offers a novel functional approach in improving and controlling the hardness and stiffness of polycrystalline diamond. RSC 2019-12-09 /pmc/articles/PMC9418207/ /pubmed/36133237 http://dx.doi.org/10.1039/c9na00699k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zhao, Bo
Zhang, Shengya
Duan, Shuai
Song, Jingyan
Li, Xiangjun
Yang, Bingchao
Chen, Xin
Wang, Chao
Yi, Wencai
Wang, Zhixiu
Liu, Xiaobing
Enhanced strength of nano-polycrystalline diamond by introducing boron carbide interlayers at the grain boundaries
title Enhanced strength of nano-polycrystalline diamond by introducing boron carbide interlayers at the grain boundaries
title_full Enhanced strength of nano-polycrystalline diamond by introducing boron carbide interlayers at the grain boundaries
title_fullStr Enhanced strength of nano-polycrystalline diamond by introducing boron carbide interlayers at the grain boundaries
title_full_unstemmed Enhanced strength of nano-polycrystalline diamond by introducing boron carbide interlayers at the grain boundaries
title_short Enhanced strength of nano-polycrystalline diamond by introducing boron carbide interlayers at the grain boundaries
title_sort enhanced strength of nano-polycrystalline diamond by introducing boron carbide interlayers at the grain boundaries
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9418207/
https://www.ncbi.nlm.nih.gov/pubmed/36133237
http://dx.doi.org/10.1039/c9na00699k
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