Quantum size effects in Ag thin films grown on the fivefold surface of the icosahedral Al-Cu-Fe quasicrystal: Influence of the growth temperature - Archive ouverte HAL Accéder directement au contenu
Article Dans Une Revue Journal of Vacuum Science & Technology A Année : 2022

Quantum size effects in Ag thin films grown on the fivefold surface of the icosahedral Al-Cu-Fe quasicrystal: Influence of the growth temperature

Julian Ledieu
Émilie Gaudry
Thomas Lograsso
Vincent Fournée

Résumé

We have studied the growth and electronic structure of Ag thin films on the fivefold surface of the icosahedral (i)-Al-Cu-Fe quasicrystal using scanning tunneling microscopy, low energy electron diffraction (LEED), ultraviolet photoemission spectroscopy, and density functional theory. Upon deposition at 400 K, Ag islands grow to form crystallites with a preferred thickness for a given coverage. LEED patterns reveal five rotational domains of Ag crystallites with (111) orientation for coverages larger than approximately seven monolayers. Quantum well states are observed in the photoemission spectra of Ag/i-Al-Cu-Fe ranging from 5 to 35 monolayers, indicating electron confinement within the film thickness and, thus, confirming electronic growth of Ag thin films on quasicrystalline surfaces. Electronic structure calculations have been performed to discuss the possible origins of the confinement at the film-substrate interface
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Dates et versions

hal-03542010 , version 1 (11-10-2022)

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Ankit Shukla, Julian Ledieu, Émilie Gaudry, Dongmei Wu, Thomas Lograsso, et al.. Quantum size effects in Ag thin films grown on the fivefold surface of the icosahedral Al-Cu-Fe quasicrystal: Influence of the growth temperature. Journal of Vacuum Science & Technology A, 2022, 40 (1), pp.013212. ⟨10.1116/6.0001450⟩. ⟨hal-03542010⟩
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