Data di Pubblicazione:
2022
Abstract:
Black diamond is an emerging material for solar applications. The femtosecond laser surface treatment of pristine transparent diamond allows the solar absorptance to be increased to values greater than 90% from semi-transparency conditions. In addition, the defects introduced by fs-laser treatment strongly increase the diamond surface electrical conductivity and a very-low activation energy is observed at room temperature. In this work, the investigation of electronic transport mechanisms of a fs-laser nanotextured diamond surface is reported. The charge transport was studied down to cryogenic temperatures, in the 30-300 K range. The samples show an activation energy of a few tens of meV in the highest temperature interval and for T < 50 K, the activation energy diminishes to a few meV. Moreover, thanks to fast cycles of measurement, we noticed that the black-diamond samples also seem to show a behavior close to ferromagnetic materials, suggesting electron spin influence over the transport properties. The mentioned properties open a new perspective in designing novel diamond-based biosensors and a deep knowledge of the charge-carrier transport in black diamond becomes fundamental.
Tipologia CRIS:
01.01 Articolo in rivista
Keywords:
black diamond;; LIPSS; cryogenic temperatures; electric conductivity; activation energy; variable range hopping
Elenco autori:
Polini, Riccardo; Mastellone, Matteo; Salvatori, Stefano; Pettinato, Sara; Orlando, Stefano; Trucchi, DANIELE MARIA; Valentini, Veronica; Mezzi, Alessio; Girolami, Marco; Bellucci, Alessandro
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