Visualizing Ribbon‐to‐Ribbon Heterogeneity of Chemically Unzipped Wide Graphene Nanoribbons by Silver Nanowire‐Based Tip‐Enhanced Raman Scattering Microscopy

Author:

Inose Tomoko1ORCID,Toyouchi Shuichi23ORCID,Hara Shinnosuke4,Sugioka Shoji5,Walke Peter26ORCID,Oyabu Rikuto4,Fortuni Beatrice2ORCID,Peeters Wannes2,Usami Yuki47ORCID,Hirai Kenji5ORCID,De Feyter Steven2ORCID,Uji‐i Hiroshi125ORCID,Fujita Yasuhiko289ORCID,Tanaka Hirofumi47ORCID

Affiliation:

1. Institute for Integrated Cell‐Material Sciences (WPI‐iCeMS) Kyoto University iCeMS Research Bldg, Yoshida Sakyo‐ku Kyoto 606–8501 Japan

2. Departement Chemie KU Leuven Celestijnenlaan 200F Heverlee 3001 Belgium

3. Research Institute for Light‐induced Acceleration System (RILACS) Osaka Metropolitan University 1–2 Gakuen‐cho, Naka‐ku Sakai Osaka 599–8570 Japan

4. Graduate School of Life Science and Systems Engineering Kyushu Institute of Technology 2–4 Hibikino, Wakamatsu Kitakyushu 808‐0196 Japan

5. Research Institute for Electronic Science (RIES) Hokkaido University N20W10 Sapporo 001–0020 Japan

6. Department of Materials and Environmental Technology Tallinn University of Technology Ehitajate tee 5 Tallinn 19086 Estonia

7. Research Center for Neuromorphic AI Hardware Kyushu Institute of Technology 2–4 Hibikino, Wakamatsu Kitakyushu 808‐0196 Japan

8. Toray Research Center Inc. Sonoyama 3‐3‐7 Otsu Shiga 520–8567 Japan

9. Research Institute for Sustainable Chemistry National Institute of Advanced Industrial Science and Technology (AIST Chugoku) Kagamiyama 3‐11‐32 Higashihiroshima Hiroshima 739‐0046 Japan

Abstract

AbstractGraphene nanoribbons (GNRs), a quasi‐one‐dimensional form of graphene, have gained tremendous attention due to their potential for next‐generation nanoelectronic devices. The chemical unzipping of carbon nanotubes is one of the attractive fabrication methods to obtain single‐layered GNRs (sGNRs) with simple and large‐scale production.  The authors recently found that unzipping from double‐walled carbon nanotubes (DWNTs), rather than single‐ or multi‐walled, results in high‐yield production of crystalline sGNRs. However, details of the resultant GNR structure, as well as the reaction mechanism, are not fully understood due to the necessity of nanoscale spectroscopy. In this regard, silver nanowire‐based tip‐enhanced Raman spectroscopy (TERS) is applied for single GNR analysis and investigated ribbon‐to‐ribbon heterogeneity in terms of defect density and edge structure generated through the unzipping process.  The authors found that sGNRs originated from the inner walls of DWNTs showed lower defect densities than those from the outer walls. Furthermore, TERS spectra of sGNRs exhibit a large variety in graphitic Raman parameters, indicating a large variation in edge structures. This work at the single GNR level reveals, for the first time, ribbon‐to‐ribbon heterogeneity that can never be observed by diffraction‐limited techniques and provides deeper insights into unzipped GNR structure as well as the DWNT unzipping reaction mechanism.

Funder

Konica Minolta Imaging Science Foundation

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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