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Ultrafast Charge Carrier Dynamics in Vanadium-Modified TiO2 Thin Films and Its Relation to Their Photoelectrocatalytic Efficiency for Water Splitting
- Source :
- Journal of physical chemistry. C 124 (2020): 26572–26582. doi:10.1021/acs.jpcc.0c06790, info:cnr-pdr/source/autori:Piccioni, Alberto; Catone, Daniele; Paladini, Alessandra; O'Keeffe, Patrick; Boschi, Alex; Kovtun, Alessandro; Katsikini, Maria; Boscherini, Federico; Pasquini, Luca/titolo:Ultrafast Charge Carrier Dynamics in Vanadium-Modified TiO2 Thin Films and Its Relation to Their Photoelectrocatalytic Efficiency for Water Splitting/doi:10.1021%2Facs.jpcc.0c06790/rivista:Journal of physical chemistry. C/anno:2020/pagina_da:26572/pagina_a:26582/intervallo_pagine:26572–26582/volume:124
- Publication Year :
- 2020
- Publisher :
- American Chemical Society, Washington DC , Stati Uniti d'America, 2020.
-
Abstract
- Light absorption and charge transport in oxide semiconductors can be tuned by the introduction, during deposition, of a small quantity of foreign elements, leading to the improvement of the photoelectrocatalytic performance. In this work, both unmodified and vanadium-modified TiO2 thin films deposited by radio-frequency magnetron sputtering are investigated as photoanodes for photoelectrochemical water splitting. Following a structural characterization by X-ray diffraction, atomic force microscopy, Raman spectroscopy, and X-ray photoelectron spectroscopy, photoelectrocatalysis is discussed based on ultrafast transient absorbance spectroscopy measurements. In particular, three different pump wavelengths from UV to the visible range are used (300, 390, and 530 nm) in order to cover the relevant photoactive spectral range of modified TiO2. Incident photon-to-current conversion efficiency spectra show that incorporation of vanadium in TiO2 extends water splitting in the visible range up to approximate to 530 nm, a significant improvement compared to unmodified TiO2 that is active only in the UV range less than or similar to 390 nm. However, transient absorbance spectroscopy clearly reveals that vanadium accelerates electron-hole recombination upon UV irradiation, resulting in a lower photon-to-current conversion efficiency in the UV spectral range with respect to unmodified TiO2. The new photoelectrocatalytic activity in the visible range is attributed to a V-induced introduction of intragap levels at approximate to 2.2 eV below the bottom of the conduction band. This is confirmed by long-living transient signals due to electrons photoexcited into the conduction band after visible light (530 nm) pulses. The remaining holes migrate to the semiconductor-electrolyte interface where they are captured by long-lived traps and eventually promote water oxidation under visible light.
- Subjects :
- Materials science
Thin films
Carrier dynamics
Vanadium
chemistry.chemical_element
02 engineering and technology
010402 general chemistry
01 natural sciences
ultra fast optical spectroscopy
Oxide semiconductor
Electrical conductivity
Deposition (phase transition)
Physical and Theoretical Chemistry
Thin film
business.industry
photoanode
Charge (physics)
Oxides
021001 nanoscience & nanotechnology
0104 chemical sciences
Surfaces, Coatings and Films
Electronic, Optical and Magnetic Materials
General Energy
chemistry
Water splitting
Optoelectronics
Charge carrier
0210 nano-technology
business
Thickness
carrier dynamic
Ultrashort pulse
Photoelectrochemical water splitting
Subjects
Details
- Language :
- English
- Database :
- OpenAIRE
- Journal :
- Journal of physical chemistry. C 124 (2020): 26572–26582. doi:10.1021/acs.jpcc.0c06790, info:cnr-pdr/source/autori:Piccioni, Alberto; Catone, Daniele; Paladini, Alessandra; O'Keeffe, Patrick; Boschi, Alex; Kovtun, Alessandro; Katsikini, Maria; Boscherini, Federico; Pasquini, Luca/titolo:Ultrafast Charge Carrier Dynamics in Vanadium-Modified TiO2 Thin Films and Its Relation to Their Photoelectrocatalytic Efficiency for Water Splitting/doi:10.1021%2Facs.jpcc.0c06790/rivista:Journal of physical chemistry. C/anno:2020/pagina_da:26572/pagina_a:26582/intervallo_pagine:26572–26582/volume:124
- Accession number :
- edsair.doi.dedup.....b9689a18ff679dc316e97727d133af7e
- Full Text :
- https://doi.org/10.1021/acs.jpcc.0c06790