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A comprehensive study of the effect of thermally induced surface terminations on nanodiamonds electrical properties

Articolo
Data di Pubblicazione:
2023
Abstract:
Nanodiamonds (NDs) gained increasing attention in multiple research areas due to the possibility of tuning their physical and chemical features by functionalizing their surface. This has a crucial impact on their electrical properties, which are essential in applications such as the development of innovative sensors and in the biomedical field. The great interest in electrical conduction in NDs has driven the scientific community to its extensive investigation. The role of various functionalities has been considered and different conduction mechanisms have been proposed. In this work, we reported on a systematic study of the modification of the electrical properties of differently sized NDs, as a function of different thermal treatments in air, hydrogen or inert atmosphere. Samples were electrically characterized in controlled humidity conditions to consider the influence of water on conductivity. NDs electrical properties were interpreted in connection with their surface chemistry and structural features, probed with infrared and Raman spectroscopies. The presence of surface graphite, hydrogen terminations or water adsorbed on hydrophilic oxygen-containing functional groups rendered NDs more conductive. These moieties indeed enabled different conduction mechanisms, which were respectively graphite-mediated conduction, water-induced transfer doping and Grotthus mechanism in surfaceadsorbed water. The effect of particles size on conductivity has also been evaluated and discussed. Our experimental findings shed light on the link between surface modifications and electrical properties of NDs, providing at the same time an interpretative key to understanding the effect of particles dimensions.
Tipologia CRIS:
03A-Articolo su Rivista
Keywords:
Nanodiamonds; Hydrogenation; Electrical properties; Surface modifications; IR spectroscopy; Raman spectroscopy
Elenco autori:
Sturari, S; Varzi, V; Aprà, P; Britel, A; Amine, Nour-Hanne; Andrini, G; Corte, E; Tomagra, G; Mino, L; Olivero, P; Picollo, F
Autori di Ateneo:
AMINE NOUR-HANNE
BRITEL Adam
CORTE EMILIO
MINO Lorenzo
OLIVERO Paolo
PICOLLO Federico
STURARI Sofia
TOMAGRA GIULIA
Link alla scheda completa:
https://iris.unito.it/handle/2318/1911771
Pubblicato in:
SURFACES AND INTERFACES
Journal
Progetto:
OLIVERO P. - Prog. UE n. 956387 - H2020-MSCA-ITN-2020 - "LasIonDef - Training on laser fabrication and ion implantation of defects as quantum emitters"
  • Aree Di Ricerca

Aree Di Ricerca

Settori (7)


PE11_9 - Nanomaterials engineering, e.g. nanoparticles, nanoporous materials, 1D & 2D nanomaterials - (2022)

PE3_4 - Electronic properties of materials, surfaces, interfaces, nanostructures - (2022)

PE4_4 - Surface science and nanostructures - (2022)

INFORMATICA, AUTOMAZIONE e INTELLIGENZA ARTIFICIALE - Informatica per la Chimica

PIANETA TERRA, AMBIENTE, CLIMA, ENERGIA e SOSTENIBILITA' - Energia e Fonti Energetiche

SCIENZE MATEMATICHE, CHIMICHE, FISICHE - Chimica Organica e Industriale

SCIENZE MATEMATICHE, CHIMICHE, FISICHE - Materiali Avanzati
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