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A stable atmospheric-pressure plasma for extreme-temperature synthesis.

Publication ,  Journal Article
Xie, H; Liu, N; Zhang, Q; Zhong, H; Guo, L; Zhao, X; Li, D; Liu, S; Huang, Z; Lele, AD; Brozena, AH; Wang, X; Song, K; Chen, S; Yao, Y ...
Published in: Nature
November 2023

Plasmas can generate ultra-high-temperature reactive environments that can be used for the synthesis and processing of a wide range of materials1,2. However, the limited volume, instability and non-uniformity of plasmas have made it challenging to scalably manufacture bulk, high-temperature materials3-8. Here we present a plasma set-up consisting of a pair of carbon-fibre-tip-enhanced electrodes that enable the generation of a uniform, ultra-high temperature and stable plasma (up to 8,000 K) at atmospheric pressure using a combination of vertically oriented long and short carbon fibres. The long carbon fibres initiate the plasma by micro-spark discharge at a low breakdown voltage, whereas the short carbon fibres coalesce the discharge into a volumetric and stable ultra-high-temperature plasma. As a proof of concept, we used this process to synthesize various extreme materials in seconds, including ultra-high-temperature ceramics (for example, hafnium carbonitride) and refractory metal alloys. Moreover, the carbon-fibre electrodes are highly flexible and can be shaped for various syntheses. This simple and practical plasma technology may help overcome the challenges in high-temperature synthesis and enable large-scale electrified plasma manufacturing powered by renewable electricity.

Duke Scholars

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Published In

Nature

DOI

EISSN

1476-4687

ISSN

0028-0836

Publication Date

November 2023

Volume

623

Issue

7989

Start / End Page

964 / 971

Related Subject Headings

  • General Science & Technology
 

Citation

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MLA
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Xie, H., Liu, N., Zhang, Q., Zhong, H., Guo, L., Zhao, X., … Hu, L. (2023). A stable atmospheric-pressure plasma for extreme-temperature synthesis. Nature, 623(7989), 964–971. https://doi.org/10.1038/s41586-023-06694-1
Xie, Hua, Ning Liu, Qian Zhang, Hongtao Zhong, Liqun Guo, Xinpeng Zhao, Daozheng Li, et al. “A stable atmospheric-pressure plasma for extreme-temperature synthesis.Nature 623, no. 7989 (November 2023): 964–71. https://doi.org/10.1038/s41586-023-06694-1.
Xie H, Liu N, Zhang Q, Zhong H, Guo L, Zhao X, et al. A stable atmospheric-pressure plasma for extreme-temperature synthesis. Nature. 2023 Nov;623(7989):964–71.
Xie, Hua, et al. “A stable atmospheric-pressure plasma for extreme-temperature synthesis.Nature, vol. 623, no. 7989, Nov. 2023, pp. 964–71. Epmc, doi:10.1038/s41586-023-06694-1.
Xie H, Liu N, Zhang Q, Zhong H, Guo L, Zhao X, Li D, Liu S, Huang Z, Lele AD, Brozena AH, Wang X, Song K, Chen S, Yao Y, Chi M, Xiong W, Rao J, Zhao M, Shneider MN, Luo J, Zhao J-C, Ju Y, Hu L. A stable atmospheric-pressure plasma for extreme-temperature synthesis. Nature. 2023 Nov;623(7989):964–971.
Journal cover image

Published In

Nature

DOI

EISSN

1476-4687

ISSN

0028-0836

Publication Date

November 2023

Volume

623

Issue

7989

Start / End Page

964 / 971

Related Subject Headings

  • General Science & Technology