Non-isothermal phase-field simulations of laser-written in-plane SiGe heterostructures for photonic applications

The design and construction of advanced semiconductor devices relies on the formation of nanostructures with spatially engineered compositions. Here, the authors use phase-field simulations combined with experimental data to understand how to control and utilise phase segregation in SiGe alloys by l...

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Autores principales: Ozan Aktas, Yuji Yamamoto, Mehmet Kaynak, Anna C. Peacock
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Lenguaje:EN
Publicado: Nature Portfolio 2021
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Acceso en línea:https://doaj.org/article/701e72e7e89c4440bee01c7e420805d1
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spelling oai:doaj.org-article:701e72e7e89c4440bee01c7e420805d12021-12-02T17:52:40ZNon-isothermal phase-field simulations of laser-written in-plane SiGe heterostructures for photonic applications10.1038/s42005-021-00632-12399-3650https://doaj.org/article/701e72e7e89c4440bee01c7e420805d12021-06-01T00:00:00Zhttps://doi.org/10.1038/s42005-021-00632-1https://doaj.org/toc/2399-3650The design and construction of advanced semiconductor devices relies on the formation of nanostructures with spatially engineered compositions. Here, the authors use phase-field simulations combined with experimental data to understand how to control and utilise phase segregation in SiGe alloys by laser processing for fabrication of in-plane heterostructures.Ozan AktasYuji YamamotoMehmet KaynakAnna C. PeacockNature PortfolioarticleAstrophysicsQB460-466PhysicsQC1-999ENCommunications Physics, Vol 4, Iss 1, Pp 1-12 (2021)
institution DOAJ
collection DOAJ
language EN
topic Astrophysics
QB460-466
Physics
QC1-999
spellingShingle Astrophysics
QB460-466
Physics
QC1-999
Ozan Aktas
Yuji Yamamoto
Mehmet Kaynak
Anna C. Peacock
Non-isothermal phase-field simulations of laser-written in-plane SiGe heterostructures for photonic applications
description The design and construction of advanced semiconductor devices relies on the formation of nanostructures with spatially engineered compositions. Here, the authors use phase-field simulations combined with experimental data to understand how to control and utilise phase segregation in SiGe alloys by laser processing for fabrication of in-plane heterostructures.
format article
author Ozan Aktas
Yuji Yamamoto
Mehmet Kaynak
Anna C. Peacock
author_facet Ozan Aktas
Yuji Yamamoto
Mehmet Kaynak
Anna C. Peacock
author_sort Ozan Aktas
title Non-isothermal phase-field simulations of laser-written in-plane SiGe heterostructures for photonic applications
title_short Non-isothermal phase-field simulations of laser-written in-plane SiGe heterostructures for photonic applications
title_full Non-isothermal phase-field simulations of laser-written in-plane SiGe heterostructures for photonic applications
title_fullStr Non-isothermal phase-field simulations of laser-written in-plane SiGe heterostructures for photonic applications
title_full_unstemmed Non-isothermal phase-field simulations of laser-written in-plane SiGe heterostructures for photonic applications
title_sort non-isothermal phase-field simulations of laser-written in-plane sige heterostructures for photonic applications
publisher Nature Portfolio
publishDate 2021
url https://doaj.org/article/701e72e7e89c4440bee01c7e420805d1
work_keys_str_mv AT ozanaktas nonisothermalphasefieldsimulationsoflaserwritteninplanesigeheterostructuresforphotonicapplications
AT yujiyamamoto nonisothermalphasefieldsimulationsoflaserwritteninplanesigeheterostructuresforphotonicapplications
AT mehmetkaynak nonisothermalphasefieldsimulationsoflaserwritteninplanesigeheterostructuresforphotonicapplications
AT annacpeacock nonisothermalphasefieldsimulationsoflaserwritteninplanesigeheterostructuresforphotonicapplications
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