Alloying behavior of wide band gap alkaline-earth chalcogenides
Samantha L. Millican, Jacob M. Clary, Christopher J. Bartel, Nicholas, R. Singstock, Aaron M. Holder, Charles B. Musgrave

TL;DR
This study investigates the synthesis and electronic properties of alkaline-earth chalcogenide alloys, revealing their structural preferences, tunable electronic characteristics, and potential for optoelectronic applications.
Contribution
It provides a comprehensive analysis of alloying behaviors, stability, and electronic properties of nine alkaline-earth chalcogenide alloys, including predictions for synthesis strategies and applications.
Findings
Alloys of S and Se are easily accessible with low miscibility temperatures.
Alloys of S and Te have higher critical temperatures but potential for optoelectronic use.
MgS$_{1-x}$Te$_x$ stabilizes the wurtzite structure, promising for transparent conductors.
Abstract
Alloying is a powerful tool for tuning materials that facilitates the targeted design of desirable properties for a variety of applications. In this work, we provide a comprehensive investigation of the synthetic accessibility and electronic properties of nine alkaline-earth chalcogenide anion alloys (CaSO, CaSSe, CaSTe, SrSO, SrSSe, SrSTe, MgSO, MgSSe, and MgSTe). We show that isostructural alloying within the rock salt structure is favored for all systems except MgSTe, which is predicted to be a heterostructural alloy between the rock salt and wurtzite structures. Alloys of S and Se are shown to be readily accessible for all cations with low miscibility critical temperatures, enabling continuous tuning of electronic properties across this composition space. Alloys…
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Taxonomy
TopicsPhase-change materials and chalcogenides · Semiconductor materials and interfaces · Chalcogenide Semiconductor Thin Films
