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Ultrasmall single-layered NbSe nanotubes flattened within a chemical-driven self-pressurized carbon nanotube. | LitMetric

Ultrasmall single-layered NbSe nanotubes flattened within a chemical-driven self-pressurized carbon nanotube.

Nat Commun

Beijing Key Laboratory of Green Chemical Reaction Engineering and Technology, Department of Chemical Engineering, Tsinghua University, 100084, Beijing, China.

Published: January 2024

AI Article Synopsis

  • Pressure can significantly influence atom distances and electron bonding, affecting how materials bond and behave.
  • The study introduces tiny NbSe flat tubes formed through self-pressurization during the breakdown of NbSe in carbon nanotubes, leading to high internal pressures that prevent slippage.
  • Enhanced electrical properties were observed in these tubes, indicating stronger electron correlations and a unique state of matter, proposing a new method for creating materials with tailored electronic interactions.

Article Abstract

Pressure can alter interatomic distances and its electrostatic interactions, exerting a profound modifying effect on electron orbitals and bonding patterns. Conventional pressure engineering relies on compressions from external sources, which raises significant challenge in precisely applying pressure on individual molecules and also consume substantial mechanical energy. Here we report ultrasmall single-layered NbSe flat tubes (< 2.31 nm) created by self-pressurization during the deselenization of NbSe within carbon nanotubes (CNTs). As the internal force (4-17 GPa) is three orders of magnitude larger than the shear strength between CNTs, the flat tube is locked to prevent slippage. Electrical transport measurements indicate that the large pressure within CNTs induces enhanced intermolecular electron correlations. The strictly one-dimensional NbSe flat tubes harboring the Luttinger liquid (LL) state, showing a higher tunneling exponent [Formula: see text] than pure CNTs ([Formula: see text]). This work suggests a novel chemical approach to self-pressurization for generating new material configurations and modulating electron interactions.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10784551PMC
http://dx.doi.org/10.1038/s41467-023-44677-yDOI Listing

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