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Ultra-thin coating of g-C3N4 on an aligned ZnO nanorod film for rapid charge separation and improved photodegradation performance

Authors
Park, Tae JoonPawar, Rajendra C.Kang, SuheeLee, Caroline Sunyong
Issue Date
Sep-2016
Publisher
ROYAL SOC CHEMISTRY
Keywords
ENHANCED PHOTOCATALYTIC ACTIVITY; GRAPHITIC-CARBON NITRIDE; THERMAL VAPOR CONDENSATION; VISIBLE-LIGHT IRRADIATION; DOPED ZNO; NANOWIRE ARRAYS; DRIVEN PHOTOCATALYSIS; HYDROGEN GENERATION; CHEMICAL-SYNTHESIS; METAL-OXIDE
Citation
RSC ADVANCES, v.6, no.92, pp 89944 - 89952
Pages
9
Indexed
SCIE
SCOPUS
Journal Title
RSC ADVANCES
Volume
6
Number
92
Start Page
89944
End Page
89952
URI
https://scholarworks.bwise.kr/erica/handle/2021.sw.erica/16075
DOI
10.1039/c6ra16300a
ISSN
2046-2069
Abstract
Type II heterogeneous films with one dimensional (1D) zinc oxide (ZnO) nanorods coated with a graphitic carbon nitride (g-C3N4) layer (1D ZnO/gC(3)N(4)) were fabricated by a simple reflux and thermal vapor condensation process. The grown 1D ZnO/gC(3)N4 films were used to degrade methylene blue (MB) dye under visible-light irradiation. Additionally, photoelectrochemical (PEC) measurements were conducted to explore charge separation and transportation processes. The fabricated films had a photocurrent density of 0.12 mA cm(-2), which is 3.7-times higher than that of bare ZnO nanorods, and had good stability over 5 h. Moreover, the photocatalytic activities of ZnO with the g-C3N4 films performed well over multiple cycles without requiring a complex washing process for the photocatalytic recovery step. The improved performance stemmed from direct coating of an ultra-thin g-C3N4 layer (<10 nm thick) over ZnO nanorods, which induced high optical absorbance in the visible range, effective charge separation and transportation and low interfacial charge transfer resistance. A photodegradation mechanism was proposed based on the generation of OH center dot and hole radicals during MB dye degradation; these radicals were verified using tert-butanol and EDTA-2Na scavengers. The fabricated core-shell films are very promising components for PEC devices for water purification applications.
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ERICA 첨단융합대학 (ERICA 신소재·반도체공학전공)
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