ausblenden:
Schlagwörter:
Grain boundary migration, Grain boundary segregation, Half-Heusler, NbCoSn, Thermoelectric, Ball milling, Drag, Grain boundaries, Niobium compounds, Segregation (metallography), Ternary alloys, Thermoelectricity, Tin alloys, Tin compounds, Arc-melting, Grain boundary migrations, Grain boundary segregation, Grain-boundaries, Half-heusler, Half-Heusler compound, Sintered samples, Solute drag, Thermoelectric, Thermoelectric application, Spark plasma sintering
Zusammenfassung:
Pt-doped NbCoSn is a promising n-type half-Heusler compound for thermoelectric applications. We show grain boundary (GB) segregation of Pt-dopants in the as-prepared sample after arc-melting and annealing (NbCo(Pt)Sn-AP), and in the as-sintered sample after ball milling and spark plasma sintering (NbCo(Pt)Sn-AS). In NbCo(Pt)Sn-AP, GBs are wetted by a 400nm-thick layer enriched with Pt and depleted in Sn. In NbCo(Pt)Sn-AS, Pt also appears enriched over only a few nanometers at GBs, but appears depleted on one side of the GBs, where Sn peaks. This anti-correlation between species is rationalized by calculating the solute-drag effect of solute on a migrating GB, i.e. assuming a bonding energy between solutes (Pt or Sn) and a moving boundary. The numerical and experimental results agree well. Our work highlights that the influence of GBs on the transport of charge carriers extends in a much wider microstructural region in the vicinity of GBs because of fluctuations in the materials composition, including the dopants. These GB-associated features should systematically be considered in the design of thermoelectric materials targeting an optimal conversion efficiency. © 2022 Acta Materialia Inc.