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Novel High Current-Carrying Quasi-1D Material: Nb2PdS6
  • Cho, Sooheon ;
  • Jeong, Byung Joo ;
  • Choi, Kyung Hwan ;
  • Lee, Bom ;
  • Jeon, Jiho ;
  • Lee, Sang Hoon ;
  • Kim, Bum Jun ;
  • Lee, Jae Hyun ;
  • Oh, Hyung Suk ;
  • Yu, Hak Ki ;
  • Choi, Jae Young
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Publication Year
2022-12-22
Publisher
John Wiley and Sons Inc
Citation
Small, Vol.18
Keyword
breakdown current densitychemical vapor transportJoule heatingNb 2PdS 6quasi-1D materialssynthesis
Mesh Keyword
1D materialsBreakdown current densityBreakdown currentsChemical Vapour TransportHigh currentsJoules heatingNb 2PdS 6Quasi-1d materialQuasi-one dimensionalQuasi-one-dimensional
All Science Classification Codes (ASJC)
BiotechnologyChemistry (all)BiomaterialsMaterials Science (all)
Abstract
A quasi-one-dimensional van der Waals metallic nanowire Nb2PdS6 is synthesized, and its electrical characteristics are analyzed. The chemical vapor transport method is applied to produce centimeter-scale Nb2PdS6 crystals with needle-like structures and X-ray diffraction (XRD) confirms their high crystallinity. Scanning transmission electron microscopy reveals the crystal orientation and atomic arrangement of the specific region with atomic resolution. The electrical properties are examined by delaminating bulk Nb2PdS6 crystals into a few nanometer-scale wires onto 100 nm-SiO2/Si substrates using a mechanical exfoliation process. Ohmic behavior is confirmed at the low-field measurements regardless of their thickness variation, and 4.64 nm-thick Nb2PdS6 shows a breakdown current density (JBD) of 52 MA cm−2 when the high electrical field is delivered. Moreover, with further exfoliation down to a single atomic chain, the JBD of Nb2PdS6 is predicted to have a value of 527 MA cm−2. The breakdown of Nb2PdS6 proceeds due to the Joule heating mechanism, and the Nb2PdS6 nanowires are well fitted to the 1D thermal dissipating model.
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/33037
DOI
https://doi.org/10.1002/smll.202205344
Fulltext

Type
Article
Funding
S.C. and B.J.J. contributed equally to this work. This research was supported by the National Research Foundation of Korea (NRF) grant funded by the Korean government (MSIT) (2019R1A2C1006972, 2020R1A2C2010984, and 2021R1A4A1031357). This work was also supported by institutional program grants from the Korea Institute of Science and Technology.
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Yu, Hak Ki류학기
Department of Materials Science Engineering
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