Literature DB >> 31585253

Understanding amorphization mechanisms using ion irradiation in situ a TEM and 3D damage reconstruction.

Osmane Camara1, Matheus A Tunes2, Graeme Greaves2, Anamul H Mir2, Stephen Donnelly2, Jonathan A Hinks2.   

Abstract

In this work, ion irradiations in-situ of a transmission electron microscope are performed on single-crystal germanium specimens with either xenon, krypton, argon, neon or helium. Using analysis of selected area diffraction patterns and a custom implementation of the Stopping and Range of Ions in Matter (SRIM) within MATLAB (which allows both the 3D reconstruction of the collision cascades and the calculation of the density of vacancies) the mechanisms behind amorphization are revealed. An intriguing finding regarding the threshold displacements per atom (dpa) required for amorphization results from this study: even though the heavier ions generate more displacements than lighter ions, it is observed that the threshold dpa for amorphization is lower for the krypton-irradiated specimens than for the xenon-irradiated ones. The 3D reconstructions of the collision cascades show that this counter-intuitive observation is the consequence of a heterogeneous amorphization mechanism. Furthermore, it is also shown that such a heterogeneous process occurs even for helium ions, which, on average induce only three recoils per ion in the specimen. It is revealed that at relatively high dpa, the stochastic nature of the collision cascade ensures complete amorphization via the accumulation of large clusters of defects and even amorphous zones generated by single-helium-ion strikes.
Copyright © 2019 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Amorphization mechanisms; Displacement per atom; In-situ TEM; Radiation damage; Semiconductors

Year:  2019        PMID: 31585253     DOI: 10.1016/j.ultramic.2019.112838

Source DB:  PubMed          Journal:  Ultramicroscopy        ISSN: 0304-3991            Impact factor:   2.689


  1 in total

1.  Deviating from the pure MAX phase concept: Radiation-tolerant nanostructured dual-phase Cr2AlC.

Authors:  M A Tunes; M Imtyazuddin; C Kainz; S Pogatscher; V M Vishnyakov
Journal:  Sci Adv       Date:  2021-03-24       Impact factor: 14.136

  1 in total

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