paper

The preparation and properties of polycrystalline BiOSe -- pitfalls and difficulties with reproducibility and charge transport limiting parameters

arXiv:2504.15227

Abstract

Thermoelectric materials allow the direct conversion of waste heat into electricity, and novel materials are being investigated for this purpose. Recently, doped BiOSe has shown high application potential. In this study, we discuss causes for large variation in reported transport properties of pure BiOSe and present a preparation method that improves the reproducibility of undoped polycrystalline samples and improves their stability under thermal cycling. Key steps of this method include calcination of the BiO precursor, purification of the synthesized material in a temperature gradient, use of a coarse particle fraction and compaction of the powders in a Si3N4 die instead of a graphite die. The resulting polycrystalline material exhibits improved reproducibility and enhanced resistance to thermal cycling. It has room temperature electrical conductivity σRT ~ 500 S.m-1 and Seebeck coefficient S ~ -300 V.K. These properties make it suitable as a reference material for future doping studies. The presented synthesis approach may provide a more reliable platform for investigating the intrinsic behavior and doping response of BiOSe in thermoelectric applications.

Manuscript: 20 pages, 9 figures. Electronic Supplementary Material: 21 pages, 16 figures, 11 tables

The preparation and properties of polycrystalline Bi$_2$O$_2$Se -- pitfalls and difficulties with reproducibility and charge transport limiting parameters · wovepaper