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Composite Laser Ceramics by Advanced Bonding Technology

Composites obtained by bonding materials with the same crystal structure and different chemical compositions can create new functions that do not exist in conventional concepts. We have succeeded in bonding polycrystalline YAG and Nd:YAG ceramics without any interstices at the bonding interface, and...

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Autores principales: Ikesue, Akio, Aung, Yan Lin, Kamimura, Tomosumi, Honda, Sawao, Iwamoto, Yuji
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5848968/
https://www.ncbi.nlm.nih.gov/pubmed/29425152
http://dx.doi.org/10.3390/ma11020271
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author Ikesue, Akio
Aung, Yan Lin
Kamimura, Tomosumi
Honda, Sawao
Iwamoto, Yuji
author_facet Ikesue, Akio
Aung, Yan Lin
Kamimura, Tomosumi
Honda, Sawao
Iwamoto, Yuji
author_sort Ikesue, Akio
collection PubMed
description Composites obtained by bonding materials with the same crystal structure and different chemical compositions can create new functions that do not exist in conventional concepts. We have succeeded in bonding polycrystalline YAG and Nd:YAG ceramics without any interstices at the bonding interface, and the bonding state of this composite was at the atomic level, similar to the grain boundary structure in ceramics. The mechanical strength of the bonded composite reached 278 MPa, which was not less than the strength of each host material (269 and 255 MPa). Thermal conductivity of the composite was 12.3 W/mK (theoretical value) which is intermediate between the thermal conductivities of YAG and Nd:YAG (14.1 and 10.2 W/mK, respectively). Light scattering cannot be detected at the bonding interface of the ceramic composite by laser tomography. Since the scattering coefficients of the monolithic material and the composite material formed by bonding up to 15 layers of the same materials were both 0.10%/cm, there was no occurrence of light scattering due to the bonding. In addition, it was not detected that the optical distortion and non-uniformity of the refractive index variation were caused by the bonding. An excitation light source (LD = 808 nm) was collimated to 200 μm and irradiated into a commercial 1% Nd:YAG single crystal, but fracture damage occurred at a low damage threshold of 80 kW/cm(2). On the other hand, the same test was conducted on the bonded interface of 1% Nd:YAG-YAG composite ceramics fabricated in this study, but it was not damaged until the excitation density reached 127 kW/cm(2). 0.6% Nd:YAG-YAG composite ceramics showed high damage resistance (up to 223 kW/cm(2)). It was concluded that composites formed by bonding polycrystalline ceramics are ideal in terms of thermo-mechanical and optical properties.
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spelling pubmed-58489682018-03-14 Composite Laser Ceramics by Advanced Bonding Technology Ikesue, Akio Aung, Yan Lin Kamimura, Tomosumi Honda, Sawao Iwamoto, Yuji Materials (Basel) Article Composites obtained by bonding materials with the same crystal structure and different chemical compositions can create new functions that do not exist in conventional concepts. We have succeeded in bonding polycrystalline YAG and Nd:YAG ceramics without any interstices at the bonding interface, and the bonding state of this composite was at the atomic level, similar to the grain boundary structure in ceramics. The mechanical strength of the bonded composite reached 278 MPa, which was not less than the strength of each host material (269 and 255 MPa). Thermal conductivity of the composite was 12.3 W/mK (theoretical value) which is intermediate between the thermal conductivities of YAG and Nd:YAG (14.1 and 10.2 W/mK, respectively). Light scattering cannot be detected at the bonding interface of the ceramic composite by laser tomography. Since the scattering coefficients of the monolithic material and the composite material formed by bonding up to 15 layers of the same materials were both 0.10%/cm, there was no occurrence of light scattering due to the bonding. In addition, it was not detected that the optical distortion and non-uniformity of the refractive index variation were caused by the bonding. An excitation light source (LD = 808 nm) was collimated to 200 μm and irradiated into a commercial 1% Nd:YAG single crystal, but fracture damage occurred at a low damage threshold of 80 kW/cm(2). On the other hand, the same test was conducted on the bonded interface of 1% Nd:YAG-YAG composite ceramics fabricated in this study, but it was not damaged until the excitation density reached 127 kW/cm(2). 0.6% Nd:YAG-YAG composite ceramics showed high damage resistance (up to 223 kW/cm(2)). It was concluded that composites formed by bonding polycrystalline ceramics are ideal in terms of thermo-mechanical and optical properties. MDPI 2018-02-09 /pmc/articles/PMC5848968/ /pubmed/29425152 http://dx.doi.org/10.3390/ma11020271 Text en © 2018 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ikesue, Akio
Aung, Yan Lin
Kamimura, Tomosumi
Honda, Sawao
Iwamoto, Yuji
Composite Laser Ceramics by Advanced Bonding Technology
title Composite Laser Ceramics by Advanced Bonding Technology
title_full Composite Laser Ceramics by Advanced Bonding Technology
title_fullStr Composite Laser Ceramics by Advanced Bonding Technology
title_full_unstemmed Composite Laser Ceramics by Advanced Bonding Technology
title_short Composite Laser Ceramics by Advanced Bonding Technology
title_sort composite laser ceramics by advanced bonding technology
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5848968/
https://www.ncbi.nlm.nih.gov/pubmed/29425152
http://dx.doi.org/10.3390/ma11020271
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