Resistivity and thermoelectric power between -100 °C and +100 °C of gold and silver thin films formed and studied in ultrahigh vacuum
Identifieur interne : 001731 ( Main/Exploration ); précédent : 001730; suivant : 001732Resistivity and thermoelectric power between -100 °C and +100 °C of gold and silver thin films formed and studied in ultrahigh vacuum
Auteurs : M. Hubin [France] ; J. Gouault [France]Source :
- Thin Solid Films [ 0040-6090 ] ; 1974.
Abstract
A study of the size effect in the resistivity and thermoelectric power of high purity (99.999%) gold and silver films has been made in order to determine their electronic structure. The investigation was based on the ohmic and thermoelectric behaviour of gold and silver films, ranging in thickness from 100 to 3000 Å, over a temperature range of -100 °C to +100 °C in the 10-9 torr ultrahigh vacuum enclosure where they were prepared.The experimental results obtained have enabled us to understand the behaviour of the conduction electrons in bulk gold and silver in the neighbourhood of the Fermi surface by determining (1) their mean free path as a function of temperature, and (2) the variation of the mean free path and area of the Fermi surface with energy.
Url:
DOI: 10.1016/0040-6090(74)90176-X
Affiliations:
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<front><div type="abstract" xml:lang="en">A study of the size effect in the resistivity and thermoelectric power of high purity (99.999%) gold and silver films has been made in order to determine their electronic structure. The investigation was based on the ohmic and thermoelectric behaviour of gold and silver films, ranging in thickness from 100 to 3000 Å, over a temperature range of -100 °C to +100 °C in the 10-9 torr ultrahigh vacuum enclosure where they were prepared.The experimental results obtained have enabled us to understand the behaviour of the conduction electrons in bulk gold and silver in the neighbourhood of the Fermi surface by determining (1) their mean free path as a function of temperature, and (2) the variation of the mean free path and area of the Fermi surface with energy.</div>
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