Synthesis of GeSn nanoparticles under non-inert conditions

Ge 1− x Sn x nanoparticles are interesting for a variety of different optoelectronic devices, however, the synthesis normally involves highly inert conditions, making it less available and promising for future industry implementation. Here, a new non-inert synthesis route is presented which involves...

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Veröffentlicht in:Dalton transactions : an international journal of inorganic chemistry 2022-11, Vol.51 (45), p.17488-17495
Hauptverfasser: Søgaard, Nicolaj Brink, Bondesgaard, Martin, Bertelsen, Andreas Dueholm, Iversen, Bo Brummerstedt, Julsgaard, Brian
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Zusammenfassung:Ge 1− x Sn x nanoparticles are interesting for a variety of different optoelectronic devices, however, the synthesis normally involves highly inert conditions, making it less available and promising for future industry implementation. Here, a new non-inert synthesis route is presented which involves preparation of the synthesis under ambient conditions followed by a reaction in autoclaves at temperatures between 400 °C and 500 °C and pressures between 52 bar and 290 bar. The product formation is also investigated with in situ powder X-ray diffraction (PXRD) to study the effect of the reaction parameters in more detail, e.g. showing that the Sn-precursor catalyzes the reaction. The synthesized phase pure Ge 1− x Sn x nanoparticles have Sn concentrations ranging from 0 to ∼4% and crystallite sizes ranging from approximately 11 nm to 25 nm. If the Sn-precursor concentration is increased further, β-Sn is formed as an impurity phase accompanied by an increase in the size of the Ge 1− x Sn x particles, making sizes of up to about 55 nm available. Ge 1− x Sn x nanoparticles are interesting for many different optoelectronic devices, however, the synthesis normally involves highly inert conditions, making it less promising for industry implementation. Here, a new non-inert synthesis is presented.
ISSN:1477-9226
1477-9234
DOI:10.1039/d2dt02739a