Science and technology of diamond films grown on HfO2 interface layer for transformational technologies
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Alcantar-Peña, Jesus J.
Lee, Geunhee
Fuentes-Fernandez, Erika M. A.
Gurman, Pablo
Quevedo-Lopez, Manuel
Sahoo, Satyaprakash
Katiyar, Ram S.
Berman, Daniet
Auciello, Orlando
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Elsevier B.V.
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Abstract
This paper describes the science underlying the synthesis and characterization of microcrystalline diamond (MCD) to ultrananocrystalline diamond (UNCD) films on hafnium oxide (HfO2) thin films, grown on flat Si substrates and micro-pillars on Si substrates, for the first time. HfO2 is used as a novel inter-phase layer for the integration of microcrystalline (1–3 μm grain size), nanocrystalline (10–200 nm grain size), and ultrananocrystalline diamond (3–5 nm grain size) as coatings on substrates used in transformational technologies such as silicon, oxides, and metals that need protective corrosion/mechanical abrasion resistant coatings developed in this work. Atomic layer deposition was used to grow HfO2 films with 5, 10, 30 and 100 nm in thickness, while hot filament chemical vapor deposition was used to grow diamond films, respectively. High resolution transmission electron microscopy, X-ray photoelectron and Raman spectroscopies revealed the formation of an atomic scale hafnium carbide (HfC) interphase layer on the surface of the HfO2 film, which provides efficient nucleation for diamond film growth to produce tailored diamond surfaces on flat Si substrates and Si micro-pillars on flat Si substrates, for new transformational micro/nano-electronics and other high-tech technologies.
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Alcantar-Peña, J. J., Lee, G., Fuentes-Fernandez, E. M. A., Gurman, P., Quevedo-Lopez, M., Sahoo, S., Katiyar, R. S., Berman, D., & Auciello, O. (2016). Science and technology of diamond films grown on HfO2 interface layer for transformational technologies. Diamond and Related Materials, 69, 221–228. https://doi.org/10.1016/J.DIAMOND.2016.09.010
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Except where otherwise noted, this item's license is described as Attribution-NonCommercial-NoDerivs 3.0 United States

