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X-ray Based in Situ Investigation of Silicon Growth Mechanism Dynamics—Application to Grain and Defect Formation

Article dans une revue avec comité de lecture
Author
OUADDAH, Hadjer
199957 Institut des Matériaux, de Microélectronique et des Nanosciences de Provence [IM2NP]
BECKER, Maike
199957 Institut des Matériaux, de Microélectronique et des Nanosciences de Provence [IM2NP]
RIBERI-BÉRIDOT, Thècle
199957 Institut des Matériaux, de Microélectronique et des Nanosciences de Provence [IM2NP]
TSOUTSOUVA, Maria
199957 Institut des Matériaux, de Microélectronique et des Nanosciences de Provence [IM2NP]
STAMELOU, Vasiliki
REGULA, Gabrielle
199957 Institut des Matériaux, de Microélectronique et des Nanosciences de Provence [IM2NP]
REINHART, Guillaume
198056 Aix Marseille Université [AMU]
199957 Institut des Matériaux, de Microélectronique et des Nanosciences de Provence [IM2NP]
PÉRICHAUD, Isabelle
199957 Institut des Matériaux, de Microélectronique et des Nanosciences de Provence [IM2NP]
GUITTONNEAU, Fabrice
VALADE, Jean-Paul
2568 European Synchrotron Radiation Facility [ESRF]
RACK, Alexander
2568 European Synchrotron Radiation Facility [ESRF]
186406 High-resolution Diffraction Topography Beamline [ID19]
BOLLER, Elodie
2568 European Synchrotron Radiation Facility [ESRF]
186406 High-resolution Diffraction Topography Beamline [ID19]
BARUCHEL, José
2568 European Synchrotron Radiation Facility [ESRF]
186406 High-resolution Diffraction Topography Beamline [ID19]
MANGELINCK-NOËL, Nathalie
199957 Institut des Matériaux, de Microélectronique et des Nanosciences de Provence [IM2NP]
300732 Nanyang Technological University [Singapour] [NTU]
BARRALLIER, Laurent
107452 Laboratoire de Conception Fabrication Commande [LCFC]
128006 MECASURF [MECASURF]
211915 Mechanics surfaces and materials processing [MSMP]
303092 Arts et Métiers Paristech ENSAM Aix-en-Provence

URI
http://hdl.handle.net/10985/20017
Date
2020
Journal
Crystals

Abstract

To control the final grain structure and the density of structural crystalline defects in silicon (Si) ingots is still a main issue for Si used in photovoltaic solar cells. It concerns both innovative and conventional fabrication processes. Due to the dynamic essence of the phenomena and to the coupling of mechanisms at different scales, the post-mortem study of the solidified ingots gives limited results. In the past years, we developed an original system named GaTSBI for Growth at high Temperature observed by Synchrotron Beam Imaging, to investigate in situ the mechanisms involved during solidification. X-ray radiography and X-ray Bragg diffraction imaging (topography) are combined and implemented together with the running of a high temperature (up to 2073 K) solidification furnace. The experiments are conducted at the European Synchrotron Radiation Facility (ESRF). Both imaging techniques provide in situ and real time information during growth on the morphology and kinetics of the solid/liquid (S/L) interface, as well as on the deformation of the crystal structure and on the dynamics of structural defects including dislocations. Essential features of twinning, grain nucleation, competition, strain building, and dislocations during Si solidification are characterized and allow a deeper understanding of the fundamental mechanisms of its growth.

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