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Jeong, Hu Young
UCRF Electron Microscopy group
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Structural Evolution of Chemically-Driven RuO2 Nanowires and 3-Dimensional Design for Photo-Catalytic Applications

Author(s)
Park, JoonmoLee, Jae WonYe, Byeong UkChun, Sung HeJoo, Sang HoonPark, HyunwoongLee, HeonJeong, Hu YoungKim, Myung HwaBaik, Jeong Min
Issued Date
2015-07
DOI
10.1038/srep11933
URI
https://scholarworks.unist.ac.kr/handle/201301/18115
Fulltext
http://www.nature.com/articles/srep11933
Citation
SCIENTIFIC REPORTS, v.5, no.11933, pp.1 - 9
Abstract
Growth mechanism of chemically-driven RuO2 nanowires is explored and used to fabricate three-dimensional RuO2 branched Au-TiO2 nanowire electrodes for the photostable solar water oxidation. For the real time structural evolution during the nanowire growth, the amorphous RuO2 precursors (Ru(OH)(3)center dot H2O) are heated at 180 degrees C, producing the RuO2 nanoparticles with the tetragonal crystallographic structure and Ru enriched amorphous phases, observed through the in-situ synchrotron x-ray diffraction and the high-resolution transmission electron microscope images. Growth then proceeds by Ru diffusion to the nanoparticles, followed by the diffusion to the growing surface of the nanowire in oxygen ambient, supported by the nucleation theory. The RuO2 branched Au-TiO2 nanowire arrays shows a remarkable enhancement in the photocurrent density by approximately 60% and 200%, in the UV-visible and Visible region, respectively, compared with pristine TiO2 nanowires. Furthermore, there is no significant decrease in the device's photoconductance with UV-visible illumination during 1 day, making it possible to produce oxygen gas without the loss of the photoactvity.
Publisher
NATURE PUBLISHING GROUP
ISSN
2045-2322
Keyword
THERMAL EVAPORATIONTIO2 NANORODSNANOSTRUCTURESGROWTHARRAYSNANOPARTICLESCOMPOSITEROUTE

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