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- W3120518693 abstract "• Composites BiFe 0.9 Mn 0.1 O 3 - x (α-MoO 3 ) were synthesized for photocatalysis. • A Z-type charge transfer mechanism is elucidated in this system. • Polarization field and interface promote photodecomposition tetracycline. • Photodegradation intermediates and low biotoxicity are validated. Extraction or injection of charges through the interface in hybrid catalysts is a fascinating strategy for steering charge carrier transfer in solar energy conversion applications. Instead of interfacial charges regulation, we adopt intrinsic spontaneous polarization-modulated internal electric field to drive photo-generated carriers separation and transfer in both the bulk and surface for photocatalysis. Herein, we first report a series of nano-composites made of perovskite ferroelectric BiFe 0.9 Mn 0.1 O 3 and orthorhombic phase α-MoO 3 semiconductor (BFMO- x M, x = 0, 5%, 10%, 15%) via two-step thermal synthesis method. With × = 10%, the heterostructure exhibits significantly enhancement of optical response and photo-decomposion tetracycline capacity under sunlight compared with pure BFMO and M. The improved photocatalysis is attributed to the superimposed actions of the Z-scheme charge transfer through interface and the polarization field in BFMO for the anti-recombination of photo-excited electron-hole pairs. This work indeed offers a strategic design over multicomponent catalyst by consider the synergy of polarization charges and interfacial charge transmission for solar energy conversion." @default.
- W3120518693 created "2021-01-18" @default.
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- W3120518693 date "2021-04-01" @default.
- W3120518693 modified "2023-10-11" @default.
- W3120518693 title "Promoting carrier separation efficiently by macroscopic polarization charges and interfacial modulation for photocatalysis" @default.
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- W3120518693 doi "https://doi.org/10.1016/j.cej.2020.128393" @default.
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