Dalton Transactions · 2014 · 79 citations · 49 references
Optical MaterialsEngineeringNanosheetWater ElectrolyzersOptoelectronic DevicesChemical EngineeringElectronic DevicesElectrolyzer CellNanostructure SynthesisHybrid MaterialsMaterials ScienceNanotechnologyPhotonic MaterialsSmart Electrochromic DeviceElectrochemistryFunctional NanomaterialsElectronic MaterialsSwitching TimeNanomaterialsApplied PhysicsHoneycomb WoFast Switching TimeFunctional MaterialsHydrothermal Processing
Herein, we report honeycomb nanostructured single crystalline hexagonal WO(3) (h-WO(3)) thin films in order to improve electrochromic performance. In the present investigation, honeycomb nanostructured WO(3) with different unit size and nanowire array with highly nanocrystalline frameworks have been synthesized via a hydrothermal technique. The influence of hydrothermal reaction time on the honeycomb unit cells, crystallite size, lithium ion diffusion coefficient and switching time for coloration/bleaching were studied systematically. The electrochromic study reveals that the honeycomb unit cell size has a significant impact on the electrochromic performance. Small unit cells in the honeycomb lead to large optical modulation and fast switching response. A large optical modulation in the visible spectral region (60.74% at λ = 630 nm) at a potential of -1.2 V with fast switching time (4.29 s for coloration and 3.38 s for bleaching) and high coloration efficiency (87.23 cm(2) C(-1)) is observed in the honeycomb WO(3) thin films with a unit cell diameter of 1.7 μm. The variation in color on reduction of WO(3) with applied potential has been plotted on an xy-chromaticity diagram and the color space coordinate shows the transition from a colorless to deep blue state.
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Visible-light-induced WO3/g-C3N4 composites with enhanced photocatalytic activity
Liying Huang, Hui Xu, Yeping Li et al. · Dalton Transactions · 2013 · 506 citations
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Jun Zhou, Yucheng Ding, Shaozhi Deng et al. · Advanced Materials · 2005 · 333 citations
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