Researchers reveal electronic nature of charge density wave and electron-phonon coupling in Kagome superconductor

Researchers reveal electronic nature of charge density wave and electron-phonon coupling in Kagome superconductor
Crystal structure and Fermi surface of KV3Sb5. Credit: Institute of Physics

Recently, the Kagome superconductors AV3Sb5 (A = K, Rb and Cs) have attracted enormous attention due to their novel phenomena and rich physics. They exhibit unconventional charge density wave (CDW), giant anomalous Hall effect and superconductivity. The CDW state is intimately related to the anomalous Hall effect and competes with superconductivity under pressure. Investigating the electronic structure of the CDW state is essential to understand its nature and the related physical properties.

High-resolution angle-resolved photoemission spectroscopy (ARPES) is a powerful technique to study the electronic structures of materials in the momentum space. Recently, Luo Hailan in Prof. Zhou Xingjiang’s group from the Institute of Physics of the Chinese Academy of Sciences (CAS) carried out high-resolution ARPES measurements on KV3Sb5 and revealed the nature of the CDW and electron-phonon coupling in KV3Sb5.

From the ARPES measurements, the researchers observed clear evidence of the 2×2 CDW-induced electronic structure reconstruction. These include the Fermi surface reconstruction, the associated band-structure foldings between the boundary and the center of the pristine Brillouin zone, and the CDW gap openings at the boundary of the pristine and reconstructed Brillouin zones.

Near the Fermi level, the Fermi surface-dependent and momentum-dependent CDW gap was measured and a strong anisotropy of the CDW gap was observed for all the V-derived Fermi surface sheets.

Moreover, signatures of the electron-phonon coupling were revealed for all the V-derived bands.

  • Researchers reveal electronic nature of charge density wave and electron-phonon coupling in Kagome superconductor
    Evidence of electronic structure reconstruction in KV3Sb5. Credit: Institute of Physics
  • Researchers reveal electronic nature of charge density wave and electron-phonon coupling in Kagome superconductor
    CDW-induced band splitting and gap opening in the measured band structures of KV3Sb5 at 20 K and their comparison with band-structure calculations. Credit: Institute of Physics
  • Researchers reveal electronic nature of charge density wave and electron-phonon coupling in Kagome superconductor
    Fermi surface-dependent and momentum-dependent CDW gaps of KV3Sb5 measured at 5 K. Credit: Institute of Physics
  • Researchers reveal electronic nature of charge density wave and electron-phonon coupling in Kagome superconductor
    Signatures of the electron–phonon coupling in KV3Sb5. Credit: Institute of Physics

These observations indicate that the electron-phonon coupling may play a dominant role in driving the CDW transition. They also provide key information in understanding the origin of the CDW and its interplay with other physical properties in AV3Sb5 Kagome superconductors.

This study was published in Nature Communications.


Scientists reveal factors affecting electron-phonon coupling in FeSe under pressure


More information:
Hailan Luo et al, Electronic nature of charge density wave and electron-phonon coupling in kagome superconductor KV3Sb5, Nature Communications (2022). DOI: 10.1038/s41467-021-27946-6

Provided by
Chinese Academy of Sciences


Citation:
Researchers reveal electronic nature of charge density wave and electron-phonon coupling in Kagome superconductor (2022, February 18)
retrieved 18 February 2022
from https://phys.org/news/2022-02-reveal-electronic-nature-density-electron-phonon.html

This document is subject to copyright. Apart from any fair dealing for the purpose of private study or research, no
part may be reproduced without the written permission. The content is provided for information purposes only.

For all the latest Science News Click Here 

 For the latest news and updates, follow us on Google News

Read original article here

Denial of responsibility! TheDailyCheck is an automatic aggregator around the global media. All the content are available free on Internet. We have just arranged it in one platform for educational purpose only. In each content, the hyperlink to the primary source is specified. All trademarks belong to their rightful owners, all materials to their authors. If you are the owner of the content and do not want us to publish your materials on our website, please contact us by email – [email protected] The content will be deleted within 24 hours.