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Si Substitution in Nanotubes and Graphene via Intermittent Vacancies

Materials Science 2019-02-08 v1

Abstract

The properties of single-walled carbon nanotubes (SWCNTs) and graphene can be modified by the presence of covalently bound impurities. Although this can be achieved by introducing chemical additives during synthesis, that often hinders growth and leads to limited crystallite size and quality. Here, through the simultaneous formation of vacancies with low-energy argon plasma and the thermal activation of adatom diffusion by laser irradiation, silicon impurities are incorporated into the lattice of both materials. After an exposure of \sim1 ion/nm2^{2}, we find Si substitution densities of 0.15 nm2^{-2} in graphene and 0.05 nm2^{-2} in nanotubes, as revealed by atomically resolved scanning transmission electron microscopy. In good agreement with predictions of Ar irradiation effects in SWCNTs, we find Si incorporated in both mono- and divacancies, with \sim2/3 being of the first type. Controlled inclusion of impurities in the quasi-1D and 2D carbon lattices may prove useful for applications such as gas sensing, and a similar approach might also be used to substitute other elements with migration barriers lower than that of carbon.

Keywords

Cite

@article{arxiv.1902.02611,
  title  = {Si Substitution in Nanotubes and Graphene via Intermittent Vacancies},
  author = {Heena Inani and Kimmo Mustonen and Alexander Markevich and Er-Xiong Ding and Mukesh Tripathi and Aqeel Hussain and Clemens Mangler and Esko I. Kauppinen and Toma Susi and Jani Kotakoski},
  journal= {arXiv preprint arXiv:1902.02611},
  year   = {2019}
}

Comments

5 Pages, 5 Figures, 1 Table