| Literature DB >> 25338208 |
Akimitsu Narita1, Ivan A Verzhbitskiy, Wout Frederickx, Kunal S Mali, Soeren Alkaersig Jensen, Michael Ryan Hansen, Mischa Bonn, Steven De Feyter, Cinzia Casiraghi, Xinliang Feng, Klaus Müllen.
Abstract
Structurally defined, long (>100 nm), and low-band-gap (∼1.2 eV) graphene nanoribbons (GNRs) were synthesized through a bottom-up approach, enabling GNRs with a broad absorption spanning into the near-infrared (NIR) region. The chemical identity of GNRs was validated by IR, Raman, solid-state NMR, and UV-vis-NIR absorption spectroscopy. Atomic force microscopy revealed well-ordered self-assembled monolayers of uniform GNRs on a graphite surface upon deposition from the liquid phase. The broad absorption of the low-band-gap GNRs enables their detailed characterization by Raman and time-resolved terahertz photoconductivity spectroscopy with excitation at multiple wavelengths, including the NIR region, which provides further insights into the fundamental physical properties of such graphene nanostructures.Entities:
Keywords: Diels−Alder reaction; band-gap engineering; cyclodehydrogenation; graphene nanoribbon; near-infrared absorption
Year: 2014 PMID: 25338208 DOI: 10.1021/nn5049014
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881