Dual textured BiVO4/Sb:SnO2 heterostructure for enhanced photoelectrochemical Water-splitting
[Display omitted] •Design of novel dual-textured heterostructure of BiVO4 (BVO)/Sb:SnO2 (ATO) for solar water-splitting.•Dual-textured heterostructure consisted of a top (001)-textured BiVO4 and bottom [001]-oriented nanorods.•Considerable enhancement in charge collection performance, resulting in h...
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Veröffentlicht in: | Chemical engineering journal (Lausanne, Switzerland : 1996) Switzerland : 1996), 2022-05, Vol.435, p.135183, Article 135183 |
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•Design of novel dual-textured heterostructure of BiVO4 (BVO)/Sb:SnO2 (ATO) for solar water-splitting.•Dual-textured heterostructure consisted of a top (001)-textured BiVO4 and bottom [001]-oriented nanorods.•Considerable enhancement in charge collection performance, resulting in high photocurrent density.•Stable photocurrent density and Faradaic efficiency of over 90% with (Co,Fe)OOH.•Providing new insights into heterostructure design and crystal facet engineering.
Heterostructure engineering, combining dissimilar materials into a single substrate, allows the alteration of the optical, electrical, and electrochemical properties of photoelectrodes for photoelectrochemical (PEC) water splitting. Herein, we successfully synthesized a novel dual-textured BiVO4 / Sb:SnO2 heterostructure as a photoanode for PEC water-splitting devices. Sb:SnO2 (ATO) nanorods (NRs) with a [001] growth orientation were first grown on a fluorine-doped tin oxide substrate by a hydrothermal method. Subsequently, the BiVO4 (BVO) seed layer was deposited on the ATO NRs using a solution spin-coating followed by a second hydrothermal growth to synthesize the dual-textured BVO/ATO heterostructure (dt-BAH). The resultant dt-BAH photoanode was composed of (001)-textured BVO on the [001]-oriented single-crystalline ATO NRs, and their interface exhibited intimate junctions. In addition, the textured BVO exhibited two different facets of (001) and (101). Notably, the synthesized dt-BAH photoanode showed a considerable enhancement in charge collection performance, resulting in a photocurrent density approximately four times higher than that of the textured BVO grown on the randomly oriented ATO nanoparticle film (single-textured BAH). Our results provide new insights into heterostructure design for the development of efficient photoelectrodes. |
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ISSN: | 1385-8947 1873-3212 |
DOI: | 10.1016/j.cej.2022.135183 |