Enhanced water splitting performance of biomass activated carbon-anchored WO3 nanoflakes
- Authors
- Sekar, Sankar; Ahmed, Abu Talha Aqueel; Pawar, Sambhaji M.; Lee, Youngmin; Im, Hyunsik; Kim, Deuk Young; Lee, Sejoon
- Issue Date
- 1-Apr-2020
- Publisher
- ELSEVIER
- Keywords
- Tungsten oxide; Activated carbon; Electrocatalysis; Oxygen evaluation reaction; Hydrogen evaluation reaction
- Citation
- APPLIED SURFACE SCIENCE, v.508
- Indexed
- SCIE
SCOPUS
- Journal Title
- APPLIED SURFACE SCIENCE
- Volume
- 508
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/6701
- DOI
- 10.1016/j.apsusc.2019.145127
- ISSN
- 0169-4332
1873-5584
- Abstract
- The high performance electrocatalysts is vital for enhancing the hydrogen production efficiency for water splitting. In light of this, biomass activated carbon-decorated tungsten oxide (WO3/B-AC) nanocomposites are synthesized through a simple sonochemical method. The WO3/B-AC nanocomposites show an aggregated structure of activated carbon nanosheet-encapsulated tungsten oxide nanoflakes. The WO3/B-AC nanocomposites exhibit the overpotential of 320 mV at 10 mA/cm(2) with the Tafel slope of similar to 48 mV/dec and good stability for the oxygen evolution reaction. For the hydrogen evolution reaction, the nanocomposites also show the overpotential of 360 mV at 10 mA/cm(2) with the Tafel slope of similar to 14 mV/dec and excellent durability in 1 M KOH. The superior electrocatalytic activity of the WO3/B-AC nanocomposite electrode is attributed to the synergetic effect from both the high electrical conductivity of activated carbon nanosheets and the high electrochemically-active surface area of WO3 nanoflakes. These results advocate that the sonochemically synthesized WO3/B-AC nanocomposites hold promise as excellent electrocatalysts for green energy conversion and storage applications.
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- Appears in
Collections - College of Natural Science > Division of Physics & Semiconductor Science > 1. Journal Articles
- College of Advanced Convergence Engineering > Division of System Semiconductor > 1. Journal Articles

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