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Optical resonance and charge transfer behavior of patterned WO3 microdisc arrays

Title
Optical resonance and charge transfer behavior of patterned WO3 microdisc arrays
Author(s)
Jeong, Hye WonChae, Weon-SikSong, BokyungCho, Chang-HeeBaek, Seong-HoPark, YiseulPark, Hyunwoong
Issued Date
2016-06
Citation
Energy & Environmental Science, v.9, no.10, pp.3143 - 3150
Type
Article
Keywords
Photoelectrochemical CellsPhotoelectrochemical PropertiesPHOTOELECTROCHemICAL WATER OXIDATIONPhysicochemical PropertyQuantum OpticsResonanceResonatorsSubstratesTHIN-FILMSThree-Dimensional AlignmentsTime-Resolved PhotoluminescenceTime Domain AnalysisTin OxidesTiO2TUNGSTEN-OXIDEVISIBLE-LIGHTBiVO4Charge TransferConversion EfficiencyCRYSTAL FACETElectrochemistryElectrodeposition ProcessElectrodesElectromagnetic Wave AbsorptionEnhanced Light AbsorptionsFinite Difference Time Domain MethodFinite Difference Time Domain SimulationsGold DepositsIndium Tin Oxide SubstratesLight AbsorptionLight emissionPHOTOANODES
ISSN
1754-5692
Abstract
One- to three-dimensional alignments of semiconductors on the micro- or nanoscale have been achieved to tailor their opto-physicochemical properties and improve their photoelectrochemical (PEC) performance. Here, to the best of our knowledge, we report for the first time the fabrication of vertically aligned, well-ordered WO3 microdisc arrays via an electrodeposition process on lithographically patterned indium tin oxide (ITO) substrates as well as their geometry-specific photoelectrochemical properties. The as-fabricated WO3 microdisc arrays exhibit enhanced light absorption as well as facilitated charge separation, leading to significantly higher PEC performance than WO3 films. A finite-difference time-domain simulation of a single WO3 microdisc indicates that strong optical resonances occur particularly in the central part of the microdisc, leading to enhanced optical absorption. A time-resolved photoluminescence study further reveals that the average lifetime of charge carriers (τ) in a microdisc array is shorter than that in a film by ∼60%. The reductively deposited Au particles are localized on the side of the microdisc and ITO substrate, which suggests that the photogenerated electrons are transferred to the same location. In addition, the oxidative deposition of FeOOH particles on the top surface and side of a microdisc indicates hole transfer pathways at the same location. This downward transfer of electrons and upward transfer of holes lead to efficient charge separation, and the radial direction appears to be the most preferred shortcut for the carriers inside the bulk of a microdisc. © 2016 The Royal Society of Chemistry.
URI
http://hdl.handle.net/20.500.11750/2788
DOI
10.1039/c6ee01003b
Publisher
Royal Society of Chemistry
Related Researcher
  • 조창희 Cho, Chang-Hee
  • Research Interests Semiconductor; Nanophotonics; Light-Matter Interaction
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Appears in Collections:
Department of Physics and Chemistry Future Semiconductor Nanophotonics Laboratory 1. Journal Articles
Smart Textile Convergence Research Group 1. Journal Articles
Division of Energy Technology 1. Journal Articles

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