Cargando…

Synthesis of magnetic alloy-filling carbon nanoparticles in super-critical benzene irradiated with an ultraviolet laser

Magnetic nanoparticles are of great importance particularly in the field of biomedicine as well as nanotechnology and nano materials science and technology. Here, we synthesise magnetic alloy-filling carbon nanoparticles (MA@C NPs) via the following two-step procedure; (1) Irradiation of a laser bea...

Descripción completa

Detalles Bibliográficos
Autores principales: Hayasaki, Yasuhiro, Hasumura, Takashi, Fukuda, Takahiro, Nagaoka, Yutaka, Ukai, Tomofumi, Iwai, Seiki, Uchida, Takashi, Maekawa, Toru
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5047855/
https://www.ncbi.nlm.nih.gov/pubmed/27722207
http://dx.doi.org/10.1016/j.heliyon.2016.e00171
_version_ 1782457483332157440
author Hayasaki, Yasuhiro
Hasumura, Takashi
Fukuda, Takahiro
Nagaoka, Yutaka
Ukai, Tomofumi
Iwai, Seiki
Uchida, Takashi
Maekawa, Toru
author_facet Hayasaki, Yasuhiro
Hasumura, Takashi
Fukuda, Takahiro
Nagaoka, Yutaka
Ukai, Tomofumi
Iwai, Seiki
Uchida, Takashi
Maekawa, Toru
author_sort Hayasaki, Yasuhiro
collection PubMed
description Magnetic nanoparticles are of great importance particularly in the field of biomedicine as well as nanotechnology and nano materials science and technology. Here, we synthesise magnetic alloy-filling carbon nanoparticles (MA@C NPs) via the following two-step procedure; (1) Irradiation of a laser beam of 266 nm wavelength into super-critical benzene, in which both ferrocene and cobaltocene are dissolved, at 290 °C; and (2) annealing of the particles at 600 and 800 °C. We find that the core particles are composed of cobalt (Co), iron (Fe) and oxygen (O) and covered with carbon layers. The structure of the core particles as-synthesised, and annealed at 600 and 800 °C, is, respectively, amorphous, CoFe(2)O(4) and FeCo. We also investigate the viability of L929 cells in the presence of MA@C NPs and find that there is no serious advert effect of the MA@C NPs on the cell viability thanks to the carbon layers covering the core particles. The magnetic properties are well characterised. The saturation and remnant magnetisation and coercivity increase and as a result, the hyperthermic efficiency becomes higher with an increase in the annealing temperature. The further modification of the surface of the present particles with several functional molecules becomes easier due to the carbon layers, which makes the present particles more valuable. It is therefore supposed that the presently synthesised MA@C NPs may well be utilised for nanotechnology-based biomedical engineering; e.g., nano bioimaging, nano hyperthermia and nano surgery.
format Online
Article
Text
id pubmed-5047855
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-50478552016-10-07 Synthesis of magnetic alloy-filling carbon nanoparticles in super-critical benzene irradiated with an ultraviolet laser Hayasaki, Yasuhiro Hasumura, Takashi Fukuda, Takahiro Nagaoka, Yutaka Ukai, Tomofumi Iwai, Seiki Uchida, Takashi Maekawa, Toru Heliyon Article Magnetic nanoparticles are of great importance particularly in the field of biomedicine as well as nanotechnology and nano materials science and technology. Here, we synthesise magnetic alloy-filling carbon nanoparticles (MA@C NPs) via the following two-step procedure; (1) Irradiation of a laser beam of 266 nm wavelength into super-critical benzene, in which both ferrocene and cobaltocene are dissolved, at 290 °C; and (2) annealing of the particles at 600 and 800 °C. We find that the core particles are composed of cobalt (Co), iron (Fe) and oxygen (O) and covered with carbon layers. The structure of the core particles as-synthesised, and annealed at 600 and 800 °C, is, respectively, amorphous, CoFe(2)O(4) and FeCo. We also investigate the viability of L929 cells in the presence of MA@C NPs and find that there is no serious advert effect of the MA@C NPs on the cell viability thanks to the carbon layers covering the core particles. The magnetic properties are well characterised. The saturation and remnant magnetisation and coercivity increase and as a result, the hyperthermic efficiency becomes higher with an increase in the annealing temperature. The further modification of the surface of the present particles with several functional molecules becomes easier due to the carbon layers, which makes the present particles more valuable. It is therefore supposed that the presently synthesised MA@C NPs may well be utilised for nanotechnology-based biomedical engineering; e.g., nano bioimaging, nano hyperthermia and nano surgery. Elsevier 2016-10-01 /pmc/articles/PMC5047855/ /pubmed/27722207 http://dx.doi.org/10.1016/j.heliyon.2016.e00171 Text en © 2016 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Hayasaki, Yasuhiro
Hasumura, Takashi
Fukuda, Takahiro
Nagaoka, Yutaka
Ukai, Tomofumi
Iwai, Seiki
Uchida, Takashi
Maekawa, Toru
Synthesis of magnetic alloy-filling carbon nanoparticles in super-critical benzene irradiated with an ultraviolet laser
title Synthesis of magnetic alloy-filling carbon nanoparticles in super-critical benzene irradiated with an ultraviolet laser
title_full Synthesis of magnetic alloy-filling carbon nanoparticles in super-critical benzene irradiated with an ultraviolet laser
title_fullStr Synthesis of magnetic alloy-filling carbon nanoparticles in super-critical benzene irradiated with an ultraviolet laser
title_full_unstemmed Synthesis of magnetic alloy-filling carbon nanoparticles in super-critical benzene irradiated with an ultraviolet laser
title_short Synthesis of magnetic alloy-filling carbon nanoparticles in super-critical benzene irradiated with an ultraviolet laser
title_sort synthesis of magnetic alloy-filling carbon nanoparticles in super-critical benzene irradiated with an ultraviolet laser
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5047855/
https://www.ncbi.nlm.nih.gov/pubmed/27722207
http://dx.doi.org/10.1016/j.heliyon.2016.e00171
work_keys_str_mv AT hayasakiyasuhiro synthesisofmagneticalloyfillingcarbonnanoparticlesinsupercriticalbenzeneirradiatedwithanultravioletlaser
AT hasumuratakashi synthesisofmagneticalloyfillingcarbonnanoparticlesinsupercriticalbenzeneirradiatedwithanultravioletlaser
AT fukudatakahiro synthesisofmagneticalloyfillingcarbonnanoparticlesinsupercriticalbenzeneirradiatedwithanultravioletlaser
AT nagaokayutaka synthesisofmagneticalloyfillingcarbonnanoparticlesinsupercriticalbenzeneirradiatedwithanultravioletlaser
AT ukaitomofumi synthesisofmagneticalloyfillingcarbonnanoparticlesinsupercriticalbenzeneirradiatedwithanultravioletlaser
AT iwaiseiki synthesisofmagneticalloyfillingcarbonnanoparticlesinsupercriticalbenzeneirradiatedwithanultravioletlaser
AT uchidatakashi synthesisofmagneticalloyfillingcarbonnanoparticlesinsupercriticalbenzeneirradiatedwithanultravioletlaser
AT maekawatoru synthesisofmagneticalloyfillingcarbonnanoparticlesinsupercriticalbenzeneirradiatedwithanultravioletlaser