| Literature DB >> 26955896 |
Yang Gao1,2, Chen Hu1,2, Wen Jiang Zheng1,2, Sen Yang1, Fei Li1, Shao Dong Sun1, Miklós Zrínyi3, Yoshihito Osada4, Zhi Mao Yang5, Yong Mei Chen6,7.
Abstract
Fe3 O4 anisotropic nanostructures that exhibit excellent catalytic performance are rarely used to catalyze Fenton-like reactions because of the inevitable drawbacks resulting from traditional preparation methods. In this study, a facile, nontoxic, water-based approach is developed for directly regulating a series of anisotropic morphologies of Fe3 O4 nanostructures in a hydrogel matrix. In having the advantages of both the catalytic activity of Fe3 O4 and the adsorptive capacity of an anionic polymer network, the hybrid nanocomposites have the capability to effect the rapid removal of cationic dyes, such as methylene blue, from water samples. Perhaps more interestingly, hybrid nanocomposites loaded with Fe3 O4 nanorods exhibit the highest catalytic activity compared to those composed of nanoneedles and nanooctahedra, revealing the important role of nanostructure morphology. By means of scanning electrochemical microscopy, it is revealed that Fe3 O4 nanorods can efficiently catalyze H2 O2 decomposition and thus generate more free radicals ((.) OH, (.) HO2 ) for methylene blue degradation, which might account for their high catalytic activity.Entities:
Keywords: Fe3O4 anisotropic nanostructures; catalytic activity; hydrogels; hydrogen peroxide; scanning electrochemical microscopy
Year: 2016 PMID: 26955896 DOI: 10.1002/cphc.201600117
Source DB: PubMed Journal: Chemphyschem ISSN: 1439-4235 Impact factor: 3.102