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Suppressing Charged Cation Antisites via Se Vapor Annealing Enables p-Type Dopability in AgBiSe 2 –SnSe Thermoelectrics

Cation disordering is commonly found in multinary cubic compounds, but its effect on electronic properties has been neglected because of difficulties in determining the ordered structure and defect energetics. An absence of rational understanding of the point defects present has led to poor reproducibility and uncontrolled conduction type. AgBiSe 2 is a representative compound that suffers from poor reproducibility of thermoelectric properties, while the origins of its intrinsic n-type conductivity remain speculative. Here, it is demonstrated that cation disordering is facilitated by Bi Ag charged antisite defects in cubic AgBiSe 2 which also act as a principal donor defect that greatly controls the electronic properties. Using density functional theory calculations and in situ Raman spectroscopy, how saturation annealing with selenium vapor can stabilize p-type conductivity in cubic AgBiSe 2 alloyed with SnSe at high temperatures is elucidated. With stable and controlled hole concentration, a peak is observed in the weighted mobility and the density-of-states effective mass in AgBiSnSe 3 , implying an increased valley degeneracy in this system. These findings corroborate the importance of considering the defect energetics for exploring the dopability of ternary thermoelectric chalcogenides and engineering electronic bands by controlling self-doping.

36 MATERIALS SCIENCE↗

Controlling phonon lifetimes via sublattice disordering in AgBiSe 2

Understanding and controlling microscopic heat transfer mechanisms in solids is critical to material design in numerous technological applications. Yet, the current understanding of thermal transport in semiconductors and insulators is limited by the difficulty in directly measuring individual phonon lifetimes and mean free paths, and studying their dependence on the microscopic state of the material. Here in this paper, we report our measurements of microscopic phonon scattering rates in AgBiSe 2 , which exhibits a controllable, reversible change directly linked to microstructure evolution near a reversible structural phase transition, that directly impacts the thermal conductivity. We demonstrate a steplike doubling of phonon scattering rates resultant from the cation disordering at the structural transition. To rationalize the neutron scattering data, we leverage a stepwise approach to account for alterations to the thermal conductivity that are imparted by distinct scattering mechanisms. These results highlight the potential of tunable microstructures housed in a stable crystal matrix to provide a practical route to tailor phonon scattering to optimize thermal transport properties.

75 CONDENSED MATTER PHYSICS, SUPERCONDUCTIVITY AND↗

Materials Data on AgBiSeS by Materials Project

BiAgSeS is alpha Po-derived structured and crystallizes in the tetragonal P4/mmm space group. The structure is three-dimensional. Ag1+ is bonded to four equivalent Se2- and two equivalent S2- atoms to form AgSe4S2 octahedra that share corners with six equivalent AgSe4S2 octahedra, edges with four equivalent AgSe4S2 octahedra, and edges with eight equivalent BiSe2S4 octahedra. The corner-sharing octahedral tilt angles are 0°. All Ag–Se bond lengths are 2.85 Å. Both Ag–S bond lengths are 2.96 Å. Bi3+ is bonded to two equivalent Se2- and four equivalent S2- atoms to form BiSe2S4 octahedra that share corners with six equivalent BiSe2S4 octahedra, edges with four equivalent BiSe2S4 octahedra, and edges with eight equivalent AgSe4S2 octahedra. The corner-sharing octahedral tilt angles are 0°. Both Bi–Se bond lengths are 2.96 Å. All Bi–S bond lengths are 2.85 Å. Se2- is bonded to four equivalent Ag1+ and two equivalent Bi3+ atoms to form SeAg4Bi2 octahedra that share corners with six equivalent SeAg4Bi2 octahedra, edges with four equivalent SeAg4Bi2 octahedra, and edges with eight equivalent SAg2Bi4 octahedra. The corner-sharing octahedral tilt angles are 0°. S2- is bonded to two equivalent Ag1+ and four equivalent Bi3+ atoms to form SAg2Bi4 octahedra that share corners with six equivalent SAg2Bi4 octahedra, edges with four equivalent SAg2Bi4 octahedra, and edges with eight equivalent SeAg4Bi2 octahedra. The corner-sharing octahedral tilt angles are 0°.

36 MATERIALS SCIENCE↗