Cargando…

Highly stable mesoporous silica nanospheres embedded with FeCo/graphitic shell nanocrystals as magnetically recyclable multifunctional adsorbents for wastewater treatment

Highly stable and magnetically separable mesoporous silica nanospheres (MSNs) embedded with 4.6 ± 0.8 nm FeCo/graphitic carbon shell nanocrystals (FeCo/GC NCs@MSNs) were synthesized by thermal decomposition of metal precursors in MSNs and subsequent methane CVD. The FeCo/GC NCs@MSNs had a high speci...

Descripción completa

Detalles Bibliográficos
Autores principales: Hong, Yonghoon, Kim, Da Jeong, Choi, In Ae, Pal, Mou, Lee, Gaehang, Nam, Ki Min, Seo, Won Seok
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9077014/
https://www.ncbi.nlm.nih.gov/pubmed/35538962
http://dx.doi.org/10.1039/c7ra12240c
_version_ 1784702053038161920
author Hong, Yonghoon
Kim, Da Jeong
Choi, In Ae
Pal, Mou
Lee, Gaehang
Nam, Ki Min
Seo, Won Seok
author_facet Hong, Yonghoon
Kim, Da Jeong
Choi, In Ae
Pal, Mou
Lee, Gaehang
Nam, Ki Min
Seo, Won Seok
author_sort Hong, Yonghoon
collection PubMed
description Highly stable and magnetically separable mesoporous silica nanospheres (MSNs) embedded with 4.6 ± 0.8 nm FeCo/graphitic carbon shell nanocrystals (FeCo/GC NCs@MSNs) were synthesized by thermal decomposition of metal precursors in MSNs and subsequent methane CVD. The FeCo/GC NCs@MSNs had a high specific surface area (442 m(2) g(−1)), large pore volume (0.65 cm(3) g(−1)), and tunable size (65 nm, 130 nm, and 270 nm). Despite the low magnetic metal content (8.35 wt%), the FeCo/GC NCs@MSNs had a sufficiently high saturation magnetization (17.1 emu g(−1)). This is due to the superior magnetic properties of the FeCo/GC NCs, which also enable fast magnetic separation of the nanospheres. The graphitic carbon shell on the FeCo NCs not only protects the alloy core against oxidation and acid etching in 35% HCl((aq)), but also facilitates non-covalent, hydrophobic interactions with the hydrocarbon chains of organic dyes such as methyl orange and methylene blue. Surface functionalization of the FeCo/GC NCs@MSNs with thiol groups provides efficient capacity for binding with Hg(2+) ions. We have shown that the thiol-functionalized FeCo/GC NCs@MSNs (FeCo/GC NCs@MSNs-SH) work as multifunctional adsorbents for organic dyes (target organic pollutants) and Hg(2+) ions (target inorganic pollutant). We also demonstrated that the FeCo/GC NCs@MSNs-SH are excellent recyclable adsorbents for methyl orange.
format Online
Article
Text
id pubmed-9077014
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-90770142022-05-09 Highly stable mesoporous silica nanospheres embedded with FeCo/graphitic shell nanocrystals as magnetically recyclable multifunctional adsorbents for wastewater treatment Hong, Yonghoon Kim, Da Jeong Choi, In Ae Pal, Mou Lee, Gaehang Nam, Ki Min Seo, Won Seok RSC Adv Chemistry Highly stable and magnetically separable mesoporous silica nanospheres (MSNs) embedded with 4.6 ± 0.8 nm FeCo/graphitic carbon shell nanocrystals (FeCo/GC NCs@MSNs) were synthesized by thermal decomposition of metal precursors in MSNs and subsequent methane CVD. The FeCo/GC NCs@MSNs had a high specific surface area (442 m(2) g(−1)), large pore volume (0.65 cm(3) g(−1)), and tunable size (65 nm, 130 nm, and 270 nm). Despite the low magnetic metal content (8.35 wt%), the FeCo/GC NCs@MSNs had a sufficiently high saturation magnetization (17.1 emu g(−1)). This is due to the superior magnetic properties of the FeCo/GC NCs, which also enable fast magnetic separation of the nanospheres. The graphitic carbon shell on the FeCo NCs not only protects the alloy core against oxidation and acid etching in 35% HCl((aq)), but also facilitates non-covalent, hydrophobic interactions with the hydrocarbon chains of organic dyes such as methyl orange and methylene blue. Surface functionalization of the FeCo/GC NCs@MSNs with thiol groups provides efficient capacity for binding with Hg(2+) ions. We have shown that the thiol-functionalized FeCo/GC NCs@MSNs (FeCo/GC NCs@MSNs-SH) work as multifunctional adsorbents for organic dyes (target organic pollutants) and Hg(2+) ions (target inorganic pollutant). We also demonstrated that the FeCo/GC NCs@MSNs-SH are excellent recyclable adsorbents for methyl orange. The Royal Society of Chemistry 2018-01-03 /pmc/articles/PMC9077014/ /pubmed/35538962 http://dx.doi.org/10.1039/c7ra12240c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Hong, Yonghoon
Kim, Da Jeong
Choi, In Ae
Pal, Mou
Lee, Gaehang
Nam, Ki Min
Seo, Won Seok
Highly stable mesoporous silica nanospheres embedded with FeCo/graphitic shell nanocrystals as magnetically recyclable multifunctional adsorbents for wastewater treatment
title Highly stable mesoporous silica nanospheres embedded with FeCo/graphitic shell nanocrystals as magnetically recyclable multifunctional adsorbents for wastewater treatment
title_full Highly stable mesoporous silica nanospheres embedded with FeCo/graphitic shell nanocrystals as magnetically recyclable multifunctional adsorbents for wastewater treatment
title_fullStr Highly stable mesoporous silica nanospheres embedded with FeCo/graphitic shell nanocrystals as magnetically recyclable multifunctional adsorbents for wastewater treatment
title_full_unstemmed Highly stable mesoporous silica nanospheres embedded with FeCo/graphitic shell nanocrystals as magnetically recyclable multifunctional adsorbents for wastewater treatment
title_short Highly stable mesoporous silica nanospheres embedded with FeCo/graphitic shell nanocrystals as magnetically recyclable multifunctional adsorbents for wastewater treatment
title_sort highly stable mesoporous silica nanospheres embedded with feco/graphitic shell nanocrystals as magnetically recyclable multifunctional adsorbents for wastewater treatment
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9077014/
https://www.ncbi.nlm.nih.gov/pubmed/35538962
http://dx.doi.org/10.1039/c7ra12240c
work_keys_str_mv AT hongyonghoon highlystablemesoporoussilicananospheresembeddedwithfecographiticshellnanocrystalsasmagneticallyrecyclablemultifunctionaladsorbentsforwastewatertreatment
AT kimdajeong highlystablemesoporoussilicananospheresembeddedwithfecographiticshellnanocrystalsasmagneticallyrecyclablemultifunctionaladsorbentsforwastewatertreatment
AT choiinae highlystablemesoporoussilicananospheresembeddedwithfecographiticshellnanocrystalsasmagneticallyrecyclablemultifunctionaladsorbentsforwastewatertreatment
AT palmou highlystablemesoporoussilicananospheresembeddedwithfecographiticshellnanocrystalsasmagneticallyrecyclablemultifunctionaladsorbentsforwastewatertreatment
AT leegaehang highlystablemesoporoussilicananospheresembeddedwithfecographiticshellnanocrystalsasmagneticallyrecyclablemultifunctionaladsorbentsforwastewatertreatment
AT namkimin highlystablemesoporoussilicananospheresembeddedwithfecographiticshellnanocrystalsasmagneticallyrecyclablemultifunctionaladsorbentsforwastewatertreatment
AT seowonseok highlystablemesoporoussilicananospheresembeddedwithfecographiticshellnanocrystalsasmagneticallyrecyclablemultifunctionaladsorbentsforwastewatertreatment