High electrical conductivity in directionally polymerized C60 nanowires by grazing incidence of single particles

Abstract

As organic electronics continue to evolve, there is a growing demand for nanometer-scale microfabrication techniques for organic semiconductors. Although precise 2D alignment and 3D integration are essential for future device applications, significant challenges remain, particularly with organic materials. Here, we demonstrate the successful fabrication of highly oriented nanowire arrays of fullerene (C60) via directional polymerization, mediated by grazing incidence of high-energy charged particles. These C60 nanowires exhibit remarkably high electrical conductivity, comparable to that of undoped germanium, which is attributed to a unique polymerization process induced by particle irradiation. Field-effect transistor (FET) measurements revealed that electrons serve as the primary charge carriers in the nanowires. Temperature-dependent electrical measurements further indicate that the conduction mechanism follows a thermally activated hopping process, rather than conventional band conduction, reflecting the amorphous and crosslinked nature of the polymerized nanowires. Furthermore, a measurable change in conductivity upon nitrobenzene adsorption suggests their potential application as highly sensitive, electron-based organic gas sensors.

Graphical abstract: High electrical conductivity in directionally polymerized C60 nanowires by grazing incidence of single particles

Supplementary files

Article information

Article type
Communication
Submitted
11 Apr 2025
Accepted
19 May 2025
First published
20 May 2025
This article is Open Access
Creative Commons BY-NC license

Nanoscale Horiz., 2025, Advance Article

High electrical conductivity in directionally polymerized C60 nanowires by grazing incidence of single particles

M. Nobuoka, S. Sakaguchi, M. Kawata, A. Taguchi, K. Kishida, Y. Tsutsui, M. Suda, H. Inoue, A. Idesaki, T. Yamaki and S. Seki, Nanoscale Horiz., 2025, Advance Article , DOI: 10.1039/D5NH00228A

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