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High-Resolution Synchrotron µXRD and µXRF for Local Phase and Elemental Analysis in Suspension Plasma Sprayed Environmental Barrier Coatings

  • Chinmayee Nayak*
  • , Arman Hasani
  • , Gidla Vinay
  • , Ermei Mäkilä
  • , Ebenezer Owusu
  • , Nikhil Kamboj
  • , Malgorzata Grazyna Makowska
  • , Alex Lynam
  • , Acacio Rincon Romero
  • , Sneha Goel
  • , Tanvir Hussain
  • , Antti Salminen
  • , Ashish Ganvir
  • *Corresponding author for this work
  • University of Turku
  • University of Nottingham
  • Paul Scherrer Institute (PSI)

Research output: Contribution to journalArticleScientificpeer-review

Abstract

Suspension plasma spraying (SPS) enables the fabrication of environmental barrier coatings (EBCs) with complex multilayer architectures; however, degradation in such systems often initiates locally at buried interfaces, making it difficult to resolve using conventional laboratory-scale characterization techniques. In this work, the applicability of synchrotron-based micro-x-ray diffraction (µXRD), combined with micro-x-ray fluorescence (µXRF), is evaluated for the characterization of SPS-deposited ytterbium disilicate (YbDS) EBCs. An as-sprayed YbDS coating was investigated as a baseline case to examine differences between conventional XRD and spatially resolved µXRD, while an annealed and CMAS-exposed YbDS coating was studied as a service-relevant case to probe localized phase evolution. The samples were selected from previously optimized SPS process conditions and are not intended for direct comparison. Laboratory-scale XRD provided global phase information, whereas µXRD enabled layer-specific phase identification and resolved localized interfacial features. In the as-sprayed condition, µXRD confirmed phase-pure YbDS, resolved the crystallinity of individual coating layers, and verified the absence of unintended interfacial reaction phases that are not accessible by conventional XRD. In the annealed + CMAS-exposed coating, µXRD and µXRF revealed the formation of a calcium–ytterbium–silicate oxyapatite phase confined to the YbDS/Si interface, highlighting the localized nature of CMAS-induced degradation. These results demonstrate that synchrotron microanalysis provides valuable complementary insight for probing localized phase evolution in thermally sprayed EBC systems.

Original languageEnglish
Pages (from-to)650-662
Number of pages13
JournalJournal of Thermal Spray Technology
Volume35
Issue number2-3
DOIs
Publication statusPublished - Mar 2026
MoE publication typeA1 Journal article-refereed

Funding

We would like to acknowledge our collaborators from the University of Nottingham for providing the as-sprayed and annealed+CMAS-exposed YbDS coatings, Paul Scherrer Institute for providing the synchrotron beamtime, Joakim Reuteler for preparing the FIBed samples at Scientific Center for Optical and Electron Microscopy, ETH Zurich, Switzerland. We sincerely thank Aki Piiroinen for his invaluable assistance in performing various laboratory activities. Prof. Ashish Ganvir acknowledges financial support from GREEN-BAT (Dnr 352517), co-funded by the Research Council of Finland and the European Union under the M-ERA.NET 2021 framework, as well as the SOLACE (Dnr 360540) Academy research fellowship, funded by the Research Council of Finland. He also extends his gratitude to the City of Turku for supporting his tenure-track grant. Prof. Antti Salminen acknowledges financial support through the DREAMS TEKN TOT (2600577911) project, funded by Business Finland.

Keywords

  • environmental barrier coating
  • micro-XRD and micro-XRF
  • suspension Plasma spraying

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