Laser Floating Zone Growth: Overview, Singular Materials, Broad Applications, and Future Perspectives
The Laser Floating Zone (LFZ) technique, also known as Laser-Heated Pedestal Growth (LHPG), has been developed throughout the last several decades as a simple, fast, and crucible-free method for growing high-crystalline-quality materials, particularly when compared to the more conventional Verneuil,...
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doaj-db9c1c07774545b08df0a998eb43672b2021-01-01T00:01:49ZengMDPI AGCrystals2073-43522021-12-0111383810.3390/cryst11010038Laser Floating Zone Growth: Overview, Singular Materials, Broad Applications, and Future PerspectivesFrancisco Rey-García0Rafael Ibáñez1Luis Alberto Angurel2Florinda M. Costa3Germán F. de la Fuente4Instituto de Nanociencia y Materiales de Aragón (CSIC-Universidad de Zaragoza), María de Luna 3, E-50018 Zaragoza, SpainInstitut de Ciència dels Materials de la Universitat de Valéncia, C/ Catedrático José Beltrán, 2, E-46980 Paterna, SpainInstituto de Nanociencia y Materiales de Aragón (CSIC-Universidad de Zaragoza), María de Luna 3, E-50018 Zaragoza, SpainDepartamento de Física & i3N, Campus de Santiago s/n, Universidade de Aveiro, PT-3810-193 Aveiro, PortugalInstituto de Nanociencia y Materiales de Aragón (CSIC-Universidad de Zaragoza), María de Luna 3, E-50018 Zaragoza, SpainThe Laser Floating Zone (LFZ) technique, also known as Laser-Heated Pedestal Growth (LHPG), has been developed throughout the last several decades as a simple, fast, and crucible-free method for growing high-crystalline-quality materials, particularly when compared to the more conventional Verneuil, Bridgman–Stockbarger, and Czochralski methods. Multiple worldwide efforts have, over the years, enabled the growth of highly oriented polycrystalline and single-crystal high-melting materials. This work attempted to critically review the most representative advancements in LFZ apparatus and experimental parameters that enable the growth of high-quality polycrystalline materials and single crystals, along with the most commonly produced materials and their relevant physical properties. Emphasis will be given to materials for photonics and optics, as well as for electrical applications, particularly superconducting and thermoelectric materials, and to the growth of metastable phases. Concomitantly, an analysis was carried out on how LFZ may contribute to further understanding equilibrium vs. non-equilibrium phase selectivity, as well as its potential to achieve or contribute to future developments in the growth of crystals for emerging applications.https://www.mdpi.com/2073-4352/11/1/38laser floating zonelaser-heated pedestal growthsingle crystalstextured materialscongruent/incongruent melting |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Francisco Rey-García Rafael Ibáñez Luis Alberto Angurel Florinda M. Costa Germán F. de la Fuente |
spellingShingle |
Francisco Rey-García Rafael Ibáñez Luis Alberto Angurel Florinda M. Costa Germán F. de la Fuente Laser Floating Zone Growth: Overview, Singular Materials, Broad Applications, and Future Perspectives Crystals laser floating zone laser-heated pedestal growth single crystals textured materials congruent/incongruent melting |
author_facet |
Francisco Rey-García Rafael Ibáñez Luis Alberto Angurel Florinda M. Costa Germán F. de la Fuente |
author_sort |
Francisco Rey-García |
title |
Laser Floating Zone Growth: Overview, Singular Materials, Broad Applications, and Future Perspectives |
title_short |
Laser Floating Zone Growth: Overview, Singular Materials, Broad Applications, and Future Perspectives |
title_full |
Laser Floating Zone Growth: Overview, Singular Materials, Broad Applications, and Future Perspectives |
title_fullStr |
Laser Floating Zone Growth: Overview, Singular Materials, Broad Applications, and Future Perspectives |
title_full_unstemmed |
Laser Floating Zone Growth: Overview, Singular Materials, Broad Applications, and Future Perspectives |
title_sort |
laser floating zone growth: overview, singular materials, broad applications, and future perspectives |
publisher |
MDPI AG |
series |
Crystals |
issn |
2073-4352 |
publishDate |
2021-12-01 |
description |
The Laser Floating Zone (LFZ) technique, also known as Laser-Heated Pedestal Growth (LHPG), has been developed throughout the last several decades as a simple, fast, and crucible-free method for growing high-crystalline-quality materials, particularly when compared to the more conventional Verneuil, Bridgman–Stockbarger, and Czochralski methods. Multiple worldwide efforts have, over the years, enabled the growth of highly oriented polycrystalline and single-crystal high-melting materials. This work attempted to critically review the most representative advancements in LFZ apparatus and experimental parameters that enable the growth of high-quality polycrystalline materials and single crystals, along with the most commonly produced materials and their relevant physical properties. Emphasis will be given to materials for photonics and optics, as well as for electrical applications, particularly superconducting and thermoelectric materials, and to the growth of metastable phases. Concomitantly, an analysis was carried out on how LFZ may contribute to further understanding equilibrium vs. non-equilibrium phase selectivity, as well as its potential to achieve or contribute to future developments in the growth of crystals for emerging applications. |
topic |
laser floating zone laser-heated pedestal growth single crystals textured materials congruent/incongruent melting |
url |
https://www.mdpi.com/2073-4352/11/1/38 |
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