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The present work aims to investigate the influence of Cu dopants via implantation on the physical properties of Sb2Te3 thin films.
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We demonstrate the excitation of a propagating surface plasmon with a high plasmonic figure of merit in both amorphous and crystalline phases of Sb2Te3 thin films.
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The present work aims to investigate the influence of Cu dopants via implantation on the physical properties of Sb2Te3 thin films.
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We demonstrate the excitation of a propagating surface plasmon with a high plasmonic figure of merit in both amorphous and crystalline phases of Sb2Te3 thin films.
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Hot energy carrier filtering as a means to improve the thermoelectric (TE) property in Sb2Te3 thin film samples having size-selected Au nanoparticles (NPs) is investigated in the present study.
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For this, epitaxial 2D-like Sb2Te3 thin films with thicknesses of ∼20 nm were directly grown on conductive p-type Si (111) substrates by pulsed laser deposition.
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In this work, narrow bandgap Bi2Te3/Sb2Te3 thin film thermophotovoltaic cells were fabricated, and the formation mechanism of Bi2Te3/Sb2Te3 p-n heterojunctions was investigated.
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The fabricated flexible Sb2Te3 thin films exhibit a power factor of ∼8.
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Flexible Sb2Te3 thin films, for thermoelectric generator applications, were deposited by DC magnetron sputtering.
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2 crystals as well as in Sb2Te3 thin films.
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In this work, stoichiometric Sb2Te3 thin films with various thicknesses were deposited on a flexible substrate using RF magnetron sputtering.
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We provide a detailed study of the magnetic state in Cr doped Sb2Te3 thin films using terahertz time-domain spectroscopy (THz-TDS) and electrical transport.
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Furthermore, by employing a 2D-bonded Sb2Te3 thin film as a seeding layer on Si(111), a 2D growth of GeTe is harnessed.
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