PlumX Metrics
Embed PlumX Metrics

Laterally extended atomically precise graphene nanoribbons with improved electrical conductivity for efficient gas sensing

Nature Communications, ISSN: 2041-1723, Vol: 8, Issue: 1, Page: 820
2017
  • 127
    Citations
  • 0
    Usage
  • 114
    Captures
  • 3
    Mentions
  • 0
    Social Media
Metric Options:   Counts1 Year3 Year

Metrics Details

  • Citations
    127
  • Captures
    114
  • Mentions
    3
    • News Mentions
      2
      • 2
    • Blog Mentions
      1
      • 1

Most Recent Blog

New graphene nano-ribbons lend sensors unprecedented sensitivity

Pinning DNA-sized ribbons of carbon to a gas sensor can boost its sensitivity far better than any other known carbon material.

Most Recent News

New graphene nano-ribbons lend sensors unprecedented sensitivity

Pinning DNA-sized ribbons of carbon to a gas sensor can boost its sensitivity far better than any other known carbon material.

Article Description

Narrow atomically precise graphene nanoribbons hold great promise for electronic and optoelectronic applications, but the previously demonstrated nanoribbon-based devices typically suffer from low currents and mobilities. In this study, we explored the idea of lateral extension of graphene nanoribbons for improving their electrical conductivity. We started with a conventional chevron graphene nanoribbon, and designed its laterally extended variant. We synthesized these new graphene nanoribbons in solution and found that the lateral extension results in decrease of their electronic bandgap and improvement in the electrical conductivity of nanoribbon-based thin films. These films were employed in gas sensors and an electronic nose system, which showed improved responsivities to low molecular weight alcohols compared to similar sensors based on benchmark graphitic materials, such as graphene and reduced graphene oxide, and a reliable analyte recognition. This study shows the methodology for designing new atomically precise graphene nanoribbons with improved properties, their bottom-up synthesis, characterization, processing and implementation in electronic devices.

Bibliographic Details

Mehdi Pour, Mohammad; Lashkov, Andrey; Radocea, Adrian; Liu, Ximeng; Sun, Tao; Lipatov, Alexey; Korlacki, Rafal A; Shekhirev, Mikhail; Aluru, Narayana R; Lyding, Joseph W; Sysoev, Victor; Sinitskii, Alexander

Springer Science and Business Media LLC

Chemistry; Biochemistry, Genetics and Molecular Biology; Physics and Astronomy

Provide Feedback

Have ideas for a new metric? Would you like to see something else here?Let us know