Micrometer width and nanometer thick wires with different shapes were produced ≈3\upmum below the surface of a diamond crystal using a microbeam of He+ ions with 1.8~MeV energy. Initial samples are amorphous and after annealing at T≈1475~K, the wires crystallized into a graphite-like structures, according to confocal Raman spectroscopy measurements. The electrical resistivity at room temperature is only one order of magnitude larger than the in-plane resistivity of highly oriented pyrolytic bulk graphite and shows a small resistivity ratio(ρ(2K)/ρ(315K)≈1.275). A small negative magnetoresistance below T=200~K was measured and can be well understood taking spin-dependent scattering processes into account. The used method provides the means to design and produce millimeter to micrometer sized conducting circuits with arbitrary shape embedded in a diamond matrix.
@article{arxiv.1702.05409,
title = {Fabrication and electrical transport properties of embedded graphite microwires in a diamond matrix},
author = {J. Barzola-Quiquia and T. Lühmann and R. Wunderlich and M. Stiller and M. Zoraghi and J. Meijer and P. Esquinazi and J. Böttner and I. Estrela-Lopis},
journal= {arXiv preprint arXiv:1702.05409},
year = {2017}
}
Comments
12 pages, 5 figures, to be published in Journal of Physics D: Applied Physics (Feb. 2017)