4.8 Article

Dual Heterojunctions and Nanobowl Morphology Engineered BiVO4 Photoanodes for Enhanced Solar Water Splitting

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WILEY-V C H VERLAG GMBH
DOI: 10.1002/smll.202304835

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bismuth vanadate; heterojunction photoanodes; nanobowl arrays; photoelectrochemical water splitting

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In this study, a unique BiVO4(BVO)/BiOCl nanobowl photoanode with dual heterojunctions was fabricated, which effectively enhanced light absorption and reduced carrier diffusion path. The dual heterojunctions facilitated electron transfer and bulk charge separation, resulting in a remarkable photocurrent density and excellent bulk charge separation efficiency. This work highlights the potential of integrating dual heterojunctions and morphology engineering in high-performance photoelectrodes for efficient solar conversion.
Photoelectrochemical (PEC) water splitting represents an attractive strategy to realize the conversion from solar energy to hydrogen energy, but severe charge recombination in photoanodes significantly limits the conversion efficiency. Herein, a unique BiVO4 (BVO) nanobowl (NB) heterojunction photoanode, which consists of [001]-oriented BiOCl underlayer and BVO nanobowls containing embedded BiOCl nanocrystals, is fabricated by nanosphere lithography followed by in situ transformation. Experimental characterizations and theoretical simulation prove that nanobowl morphology can effectively enhance light absorption while reducing carrier diffusion path. Density functional theory (DFT) calculations show the tendency of electron transfer from BVO to BiOCl. The [001]-oriented BiOCl underlayer forms a compact type II heterojunction with the BVO, favoring electron transfer from BVO through BiOCl to the substrate. Furthermore, the embedded BiOCl nanoparticles form a bulk heterojunction to facilitate bulk electron transfer. Consequently, the dual heterojunctions engineered BVO/BiOCl NB photoanode exhibits attractive PEC performance toward water oxidation with an excellent bulk charge separation efficiency of 95.5%, and a remarkable photocurrent density of 3.38 mA cm(-2) at 1.23 V versus reversible hydrogen electrode, a fourfold enhancement compared to the flat BVO counterpart. This work highlights the great potential of integrating dual heterojunctions engineering and morphology engineering in fabricating high-performance photoelectrodes toward efficient solar conversion.

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