2012 ©
             Publication
Journal Publication
Title of Article Nanoporous Magnetic Carbon Nanofiber Aerogels with Embedded α-Fe/γ-Fe Core-Shell Nanoparticles for Oil Sorption and Recovery 
Date of Acceptance 10 January 2022 
Journal
     Title of Journal ACS Applied Nano Materials 
     Standard SCOPUS 
     Institute of Journal American Chemical Society (ACS) 
     ISBN/ISSN 25740970 
     Volume 2020 
     Issue
     Month January
     Year of Publication 2022 
     Page 2885−2896 
     Abstract Biomass-based carbon aerogels have received a lot of attention as oil sorbents or oil/water separators due to their effectiveness, low cost, and vastly available resources. Magnetic functionalizing the carbon aerogel improves its reusability by magnetic recovery after oil sorption. This work fabricated magnetic carbon nanofibers (MCF) aerogels from pyrolysis of magnetic bacterial cellulose (MBC) aerogels. We focused on the effect of pyrolysis temperatures on the phase transformation and functionalities of the MCF aerogel. The combined characterization techniques (TG/DTA, XRD, FTIR, TEM) concluded that the MBC aerogel consists of the BC nanofiber matrix decorated with non-magnetic FeC4H2O4 and magnetic Fe3O4 nanoparticles, which transformed into amorphous carbon nanofibers anchored with the -Fe/Fe3O4 core-shell structured nanoparticles after pyrolysis at 700 C. Increasing the pyrolysis temperature to 800-900 C led to the formation of purer amorphous carbon nanofibers, whereas the nanoparticles turned into the -Fe/-Fe core-shell structure. At 1000 C, the amorphous carbon structure is better developed and coated on the -Fe/-Fe core-shell nanoparticles. The interpretation explains the results from the magnetic measurement very well and fits perfectly on the Fe-C phase diagram. Furthermore, the MCF aerogels show excellent properties as an efficient oil sorbent, such as huge surface area, low density, and hydrophobic properties. Among the samples, the MCF aerogel pyrolyzed at 700 C (MCF700) exhibits the most desirable properties while required the lowest pyrolysis temperature. It could adsorb various oils and organic solvents with high sorption capacity and could be recycled several times. With its magnetic attraction ability, the MCF700 could be magnetically manipulated towards oil, and it could be retrieved after use without direct human contact. These synergistic functionalities make it practically helpful for oil-spill remedies over a large-scale area. 
     Keyword bacterial cellulose; carbon nanofiber; aerogel; pyrolysis temperature; magnetic; oil sorption; 
Author
597020084-9 Miss PIMCHANOK IEAMVITEEVANICH [Main Author]
Science Doctoral Degree

Reviewing Status มีผู้ประเมินอิสระ 
Status ตีพิมพ์แล้ว 
Level of Publication นานาชาติ 
citation true 
Part of thesis true 
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