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Physical origin of inertness of Ta contacts on Bi2Te3.

Authors :
Music, Denis
Chen, Xiang
Holzapfel, Damian M.
Bilyalova, Hava M.
Helvaci, Melike
Heymann, Adrian O. D.
Aghda, Soheil Karimi
Maron, Tobias
Ravensburg, Anna L.
Sälker, Janis A.
Schnelle, Lukas
Woeste, Leonard A.
Source :
Journal of Applied Physics; 2018, Vol. 124 Issue 18, pN.PAG-N.PAG, 6p, 2 Diagrams, 4 Graphs
Publication Year :
2018

Abstract

Interfacial reactions and underlying atomic mechanisms between Ta contacts (space group I m 3 ¯ m) and thermoelectric Bi<subscript>2</subscript>Te<subscript>3</subscript> (space group R 3 ¯ m) are studied experimentally and theoretically. A Ta/Bi<subscript>2</subscript>Te<subscript>3</subscript> mixture is found to be inert up to the melting point of Bi<subscript>2</subscript>Te<subscript>3</subscript> (∼589 °C) based on calorimetry and interfacial composition analyses. This can be understood using density functional theory. Bi and Te adatoms hop across a close-packed Ta(110) surface in the <111>, <110>, and <100> directions with the highest dwelling time on equilibrium (fourfold hollow) sites, but they do not exchange with Ta surface atoms. To identify the electronic structure fingerprint of Ta(110) inertness, the adsorption energies and electron density distributions are calculated for the Bi<subscript>2</subscript>Te<subscript>3</subscript> constituting atoms and possible dopants (15 elements) stemming from C, N, and O groups. C, N, O, and S strongly adsorb to Ta(110), exhibiting enhanced reactivity. We propose that these four species can initiate exchange diffusion with Ta due to ionic interactions between Ta and the adsorbates. Our results imply that elements with a high electronegativity should be avoided in Bi<subscript>2</subscript>Te<subscript>3</subscript> doping because interfacial interactions may occur, degrading its stability and transport properties. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00218979
Volume :
124
Issue :
18
Database :
Complementary Index
Journal :
Journal of Applied Physics
Publication Type :
Academic Journal
Accession number :
133010607
Full Text :
https://doi.org/10.1063/1.5050558