The structure and electronic properties of tetrahedrally bonded hydrogenated amorphous carbon

Author:

Salek A. G.1ORCID,Le P. Y.1ORCID,Partridge J. G.1ORCID,Raeber T. J.1ORCID,Haberl B.2ORCID,Boehler R.2ORCID,Murdoch B. J.3ORCID,Bradby J. E.4ORCID,Ratcliff T.4ORCID,Elliman R. G.4ORCID,McKenzie D. R.5ORCID,McCulloch D. G.13ORCID

Affiliation:

1. Physics, School of Science, RMIT University 1 , Melbourne, Victoria, Australia

2. Neutron Scattering Division, Neutron Sciences Directorate, Oak Ridge National Laboratory 2 , Oak Ridge, Tennessee 37831, USA

3. RMIT Microscopy and Microanalysis Facility, RMIT University 3 , Melbourne, Victoria, Australia

4. Research School of Physics, The Australian National University 4 , Canberra, Australia

5. School of Physics, University of Sydney 5 , New South Wales, Australia

Abstract

We have synthesized hydrogenated and deuterated amorphous carbon materials that have a density, 2.7 ± 0.1 g/cm3, consistent with almost entirely tetrahedral bonding. In hydrogen-free tetrahedral amorphous carbon, the presence of a minority of sp2 bonded atoms leads to localized states that could be passivated with hydrogen by analogy with hydrogenated amorphous silicon. Neutron diffraction analysis demonstrated that the local bonding environment is consistent with ab initio models of high density hydrogenated tetrahedral amorphous carbon and with the related tetrahedral molecular structure neopentane. The optical bandgap of our material, 4.5 eV, is close to the bandgap in the density of states determined by scanning tunneling spectroscopy (4.3 eV). This bandgap is considerably larger than that of hydrogen-free tetrahedral amorphous carbon, confirming that passivation of sp2 associated tail-states has occurred. Both the structural and electronic measurements are consistent with a model in which the tetrahedrally bonded carbon regions are terminated by hydrogen, causing hopping conductivity to dominate.

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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