Nanotube‐Like Electronic States in [5,5]‐C90 Fullertube Molecules.

Author:

Jover Óscar12,Martín‐Jiménez Alberto2ORCID,Franklin Hannah M.3,Koenig Ryan M.3ORCID,Martínez José I.4ORCID,Martín Nazario25ORCID,Lauwaet Koen2,Miranda Rodolfo12ORCID,Gallego José M.4ORCID,Stevenson Steven3ORCID,Otero Roberto12ORCID

Affiliation:

1. Dep. De Física de la Materia Condensada Universidad Autónoma de Madrid Madrid 28049 Spain

2. IMDEA Nanoscience Madrid 28049 Spain

3. Dep. Of Chemistry and Biochemistry Purdue University Fort Wayne Fort Wayne IN 46805 USA

4. Instituto de Ciencia de Materiales (ICMM) CSIC Madrid 28049 Spain

5. Dep. De Química OrgánicaFacultad de Ciencias Químicas Universidad Complutense de Madrid Madrid 28040 Spain

Abstract

AbstractFullertubes, that is, fullerenes consisting of a carbon nanotube moiety capped by hemifullerene ends, are emerging carbon nanomaterials whose properties show both fullerene and carbon nanotube (CNT) traits. Albeit it may be expected that their electronic states show a certain resemblance to those of the extended nanotube, such a correlation has not yet been found or described. Here it shows a scanning tunneling microscopy (STM) and spectroscopy (STS) characterization of the adsorption, self‐assembly, and electronic structure of 2D arrays of [5,5]‐C90 fullertube molecules on two different noble metal surfaces, Ag(111) and Au(111). The results demonstrate that the shape of the molecular orbitals of the adsorbed fullertubes corresponds closely to those expected for isolated species on the grounds of density functional theory calculations. Moreover, a comparison between the electronic density profiles in the bands of the extended [5,5]‐CNT and in the molecules reveals that some of the frontier orbitals of the fullertube molecules can be described as the result of the quantum confinement imposed by the hemifullerene caps to the delocalized band states in the extended CNT. The results thus provide a conceptual framework for the rational design of custom fullertube molecules and can potentially become a cornerstone in the understanding of these new carbon nanoforms.

Funder

Comunidad de Madrid

National Science Foundation

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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