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Hexagonal tungsten oxide nanoflowers as enzymatic mimetics and electrocatalystsopen access

Authors
Park, Chan YeongSeo, Ji MinJo, HongilPark, JuhyunOk, Kang MinPark, Tae Jung
Issue Date
Jan-2017
Publisher
NATURE PUBLISHING GROUP
Citation
Scientific Reports, v.7
Journal Title
Scientific Reports
Volume
7
URI
https://scholarworks.bwise.kr/cau/handle/2019.sw.cau/4898
DOI
10.1038/srep40928
ISSN
2045-2322
Abstract
Tungsten oxide (WOx) has been widely studied for versatile applications based on its photocatalytic, intrinsic catalytic, and electrocatalytic properties. Among the several nanostructures, we focused on the flower-like structures to increase the catalytic efficiency on the interface with both increased substrate interaction capacities due to their large surface area and efficient electron transportation. Therefore, improved WOx nanoflowers (WONFs) with large surface areas were developed through a simple hydrothermal method using sodium tungstate and hydrogen chloride solution at low temperature, without any additional surfactant, capping agent, or reducing agent. Structural determination and electrochemical analyses revealed that the WONFs have hexagonal Na0.17WO3.085 center dot 0.17H(2)O structure and exhibit peroxidase-like activity, turning from colorless to blue by catalyzing the oxidation of a peroxidase substrate, such as 3,3', 5,5'-tetramethylbenzidine, in the presence of H2O2. Additionally, a WONF-modified glassy carbon electrode was adopted to monitor the electrocatalytic reduction of H2O2. To verify the catalytic efficiency enhancement by the unique shape and structure of the WONFs, they were compared with calcinated WONFs, cesium WOx nanoparticles, and other peroxidase-like nanomaterials. The results indicated that the WONFs showed a low Michaelis-Menten constant (km), high maximal reaction velocity (v(max)), and large surface area.
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대학원 (지능형에너지산업융합학과)
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