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Synthesis and structure of a non-van-der-Waals two-dimensional coordination polymer with superconductivity. | LitMetric

Synthesis and structure of a non-van-der-Waals two-dimensional coordination polymer with superconductivity.

Nat Commun

National Key Laboratory of Advanced Micro and Nano Manufacture Technology, School of Materials Science and Engineering, Peking University, Beijing, 100871, China.

Published: October 2024

AI Article Synopsis

  • Two-dimensional conjugated coordination polymers, like copper-based benzenehexathiol (Cu-BHT), are notable for their exceptional charge transport characteristics, with Cu-BHT being a rare superconductor.
  • Researchers successfully synthesized high-quality single crystals of Cu-BHT, revealing a unique quasi-two-dimensional kagome structure characterized by strong Cu-S covalent bonds between layers.
  • The crystals demonstrated significant metallic conductivity at both high (10S/cm at 300 K) and low (10S/cm at 2 K) temperatures, and achieved superconductivity at 0.25 K, highlighting an important link between the crystal structure and electrical behavior that could influence the future of quantum technologies.

Article Abstract

Two-dimensional conjugated coordination polymers exhibit remarkable charge transport properties, with copper-based benzenehexathiol (Cu-BHT) being a rare superconductor. However, the atomic structure of Cu-BHT has remained unresolved, hindering a deeper understanding of the superconductivity in such materials. Here, we show the synthesis of single crystals of CuBHT with high crystallinity, revealing a quasi-two-dimensional kagome structure with non-van der Waals interlayer Cu-S covalent bonds. These crystals exhibit intrinsic metallic behavior, with conductivity reaching 10S/cm at 300 K and 10S/cm at 2 K. Notably, superconductivity in CuBHT crystals is observed at 0.25 K, attributed to enhanced electron-electron interactions and electron-phonon coupling in the non-van der Waals structure. The discovery of this clear correlation between atomic-level crystal structure and electrical properties provides a crucial foundation for advancing superconductor coordination polymers, with potential to revolutionize future quantum devices.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11522459PMC
http://dx.doi.org/10.1038/s41467-024-53786-1DOI Listing

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