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Creation of pure non-crystalline diamond nanostructures via room-temperature ion irradiation and subsequent thermal annealing

Carbon exhibits a remarkable range of structural forms, due to the availability of sp(3), sp(2) and sp(1) chemical bonds. Contrarily to other group IV elements such as silicon and germanium, the formation of an amorphous phase based exclusively on sp(3) bonds is extremely challenging due to the stro...

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Autores principales: Picollo, F., Battiato, A., Bosia, F., Scaffidi Muta, F., Olivero, P., Rigato, V., Rubanov, S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9419479/
https://www.ncbi.nlm.nih.gov/pubmed/36132848
http://dx.doi.org/10.1039/d1na00136a
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author Picollo, F.
Battiato, A.
Bosia, F.
Scaffidi Muta, F.
Olivero, P.
Rigato, V.
Rubanov, S.
author_facet Picollo, F.
Battiato, A.
Bosia, F.
Scaffidi Muta, F.
Olivero, P.
Rigato, V.
Rubanov, S.
author_sort Picollo, F.
collection PubMed
description Carbon exhibits a remarkable range of structural forms, due to the availability of sp(3), sp(2) and sp(1) chemical bonds. Contrarily to other group IV elements such as silicon and germanium, the formation of an amorphous phase based exclusively on sp(3) bonds is extremely challenging due to the strongly favored formation of graphitic-like structures at room temperature and pressure. As such, the formation of a fully sp(3)-bonded carbon phase requires an extremely careful (and largely unexplored) definition of the pressure and temperature across the phase diagram. Here, we report on the possibility of creating full-sp(3) amorphous nanostructures within the bulk crystal of diamond with room-temperature ion-beam irradiation, followed by an annealing process that does not involve the application of any external mechanical pressure. As confirmed by numerical simulations, the (previously unreported) radiation-damage-induced formation of an amorphous sp(2)-free phase in diamond is determined by the buildup of extremely high internal stresses from the surrounding lattice, which (in the case of nanometer-scale regions) fully prevent the graphitization process. Besides the relevance of understanding the formation of exotic carbon phases, the use of focused/collimated ion beams discloses appealing perspectives for the direct fabrication of such nanostructures in complex three-dimensional geometries.
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spelling pubmed-94194792022-09-20 Creation of pure non-crystalline diamond nanostructures via room-temperature ion irradiation and subsequent thermal annealing Picollo, F. Battiato, A. Bosia, F. Scaffidi Muta, F. Olivero, P. Rigato, V. Rubanov, S. Nanoscale Adv Chemistry Carbon exhibits a remarkable range of structural forms, due to the availability of sp(3), sp(2) and sp(1) chemical bonds. Contrarily to other group IV elements such as silicon and germanium, the formation of an amorphous phase based exclusively on sp(3) bonds is extremely challenging due to the strongly favored formation of graphitic-like structures at room temperature and pressure. As such, the formation of a fully sp(3)-bonded carbon phase requires an extremely careful (and largely unexplored) definition of the pressure and temperature across the phase diagram. Here, we report on the possibility of creating full-sp(3) amorphous nanostructures within the bulk crystal of diamond with room-temperature ion-beam irradiation, followed by an annealing process that does not involve the application of any external mechanical pressure. As confirmed by numerical simulations, the (previously unreported) radiation-damage-induced formation of an amorphous sp(2)-free phase in diamond is determined by the buildup of extremely high internal stresses from the surrounding lattice, which (in the case of nanometer-scale regions) fully prevent the graphitization process. Besides the relevance of understanding the formation of exotic carbon phases, the use of focused/collimated ion beams discloses appealing perspectives for the direct fabrication of such nanostructures in complex three-dimensional geometries. RSC 2021-06-09 /pmc/articles/PMC9419479/ /pubmed/36132848 http://dx.doi.org/10.1039/d1na00136a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Picollo, F.
Battiato, A.
Bosia, F.
Scaffidi Muta, F.
Olivero, P.
Rigato, V.
Rubanov, S.
Creation of pure non-crystalline diamond nanostructures via room-temperature ion irradiation and subsequent thermal annealing
title Creation of pure non-crystalline diamond nanostructures via room-temperature ion irradiation and subsequent thermal annealing
title_full Creation of pure non-crystalline diamond nanostructures via room-temperature ion irradiation and subsequent thermal annealing
title_fullStr Creation of pure non-crystalline diamond nanostructures via room-temperature ion irradiation and subsequent thermal annealing
title_full_unstemmed Creation of pure non-crystalline diamond nanostructures via room-temperature ion irradiation and subsequent thermal annealing
title_short Creation of pure non-crystalline diamond nanostructures via room-temperature ion irradiation and subsequent thermal annealing
title_sort creation of pure non-crystalline diamond nanostructures via room-temperature ion irradiation and subsequent thermal annealing
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9419479/
https://www.ncbi.nlm.nih.gov/pubmed/36132848
http://dx.doi.org/10.1039/d1na00136a
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