Evolution of point defects in pulsed-laser-melted Ge1-x Sn x probed by positron annihilation lifetime spectroscopy

Author:

Steuer OORCID,Liedke M OORCID,Butterling MORCID,Schwarz DORCID,Schulze J,Li Z,Wagner AORCID,Fischer I AORCID,Hübner R,Zhou SORCID,Helm M,Cuniberti GORCID,Georgiev Y MORCID,Prucnal SORCID

Abstract

Abstract Direct-band-gap Germanium-Tin alloys (Ge1-x Sn x ) with high carrier mobilities are promising materials for nano- and optoelectronics. The concentration of open volume defects in the alloy, such as Sn and Ge vacancies, influences the final device performance. In this article, we present an evaluation of the point defects in molecular-beam-epitaxy grown Ge1-x Sn x films treated by post-growth nanosecond-range pulsed laser melting (PLM). Doppler broadening – variable energy positron annihilation spectroscopy and variable energy positron annihilation lifetime spectroscopy are used to investigate the defect nanostructure in the Ge1-x Sn x films exposed to increasing laser energy density. The experimental results, supported with ATomic SUPerposition calculations, evidence that after PLM, the average size of the open volume defects increases, which represents a raise in concentration of vacancy agglomerations, but the overall defect density is reduced as a function of the PLM fluence. At the same time, the positron annihilation spectroscopy analysis provides information about dislocations and Ge vacancies decorated by Sn atoms. Moreover, it is shown that the PLM reduces the strain in the layer, while dislocations are responsible for trapping of Sn and formation of small Sn-rich-clusters.

Funder

Impulse- and networking fund of the Helmholtz Association

Helmholtz Energy Materials Characterization Platform

”ForMikro”: Group IV heterostructures for high performance nanoelectronic devices

HEMCP

Publisher

IOP Publishing

Subject

Condensed Matter Physics,General Materials Science

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