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  4. Photonic materials for high-temperature applications: synthesis and characterization by X-ray ptychographic tomography
 
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Photonic materials for high-temperature applications: synthesis and characterization by X-ray ptychographic tomography

Citation Link: https://doi.org/10.15480/882.2053
Publikationstyp
Journal Article
Date Issued
2018-12-01
Sprache
English
Author(s)
Furlan, Kaline P.  orcid-logo
Larsson, Emanuel  
Diaz, Ana  
Holler, Mirko  
Krekeler, Tobias  
Ritter, Martin  orcid-logo
Petrov, Alexander Yu.  orcid-logo
Eich, Manfred  
Blick, Robert  
Schneider, Gerold A.  
Greving, Imke  
Zierold, Robert  
Janßen, Rolf  
Institut
Keramische Hochleistungswerkstoffe M-9  
Betriebseinheit Elektronenmikroskopie M-26  
Optische und Elektronische Materialien E-12  
TORE-DOI
10.15480/882.2053
TORE-URI
http://hdl.handle.net/11420/2057
Journal
Applied materials today  
Volume
13
Start Page
359
End Page
369
Citation
Applied Materials Today (13): 359-369 (2018-12-01)
Publisher DOI
10.1016/j.apmt.2018.10.002
Scopus ID
2-s2.0-85055731716
Publisher
Elsevier
Is Supplemented By
10.17632/zn49dsk7x6.1
Photonic materials for high-temperature applications need to withstand temperatures usually higher than 1000 °C, whilst keeping their function. When exposed to high temperatures, such nanostructured materials are prone to detrimental morphological changes, however the structure evolution pathway of photonic materials and its correlation with the loss of material's function is not yet fully understood. Here we use high-resolution ptychographic X-ray computed tomography (PXCT) and scanning electron microscopy (SEM) to investigate the structural changes in mullite inverse opal photonic crystals produced by a very-low-temperature (95 °C) atomic layer deposition (ALD) super-cycle process. The 3D structural changes caused by the high-temperature exposure were quantified and associated with the distinct structural features of the ceramic photonic crystals. Other than observed in photonic crystals produced via powder colloidal suspensions or sol-gel infiltration, at high temperatures of 1400 °C we detected a mass transport direction from the nano pores to the shells. We relate these different structure evolution pathways to the presence of hollow vertexes in our ALD-based inverse opal photonic crystals. Although the periodically ordered structure is distorted after sintering, the mullite inverse opal photonic crystal presents a photonic stopgap even after heat treatment at 1400 °C for 100 h.
Subjects
Ptychography X-ray computed tomography
3D image analysis
Low-temperature atomic layer deposition
Photonic materials
High-temperature applicationsa
DDC Class
620: Ingenieurwissenschaften
Funding(s)
SFB 986: Teilprojekt C2 - Keramikbasierte hochtemperaturstabile Wärmestrahlungsreflektoren und Strukturfarben  
SFB 986: Teilprojekt C5 - Oxidische Hochtemperatur-Schutzschichtsysteme mittels angepasster Porenstruktur  
SFB 986: Zentralprojekt Z3 - Elektronenmikroskopie an multiskaligen Materialsystemen  
Lizenz
http://rightsstatements.org/vocab/InC/1.0/
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