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Macroscopic polarization enhancement boosting piezo-photocatalytic performance via Nb-doping on B-site of Bi <sub>4</sub>Ti <sub>3</sub>O <sub>12</sub> nanosheets

25

Citations

47

References

2024

Year

Abstract

The development of a high-performance ferroelectric piezo-photocatalyst is an efficient strategy for advancing sustainability within the environmental and energy sectors. Yet, a major challenge lies in the creation of a strong polarized electric field that can effectively hinder charge recombination, both within the bulk and on the surface of catalysts. Herein, we synthesize a series of Nb-doped Bi<sub>4</sub>Ti<sub>3</sub>O<sub>12</sub> nanosheets via a facile one-pot hydrothermal method to achieve synergistically enhanced piezo-photocatalytic performance in CO<sub>2</sub> reduction and pollutant degradation. The optimized doped Bi<sub>4</sub>Ti<sub>3</sub>O<sub>12</sub> demonstrates remarkable efficiency in the conversion of CO<sub>2</sub> into CO, with a high production rate of 72.7 μmol∙g<sup>−1</sup>∙h<sup>−1</sup> without using co-catalysts or any sacrificial agent, surpassing the performance of unmodified Bi<sub>4</sub>Ti<sub>3</sub>O<sub>12</sub> by up to 4.69 folds. Additionally, our catalyst demonstrates ultra-fast piezo-photocatalytic degradation of organic pollutant Rhodamine B (RhB) at low concentrations and exceptional piezo-photocatalytic activity at high concentrations, outperforming most previously reported state-of-the-art catalysts. The systematic corroboration of catalyst characterization and experimental analysis reveals that the synergistic effect arises from the amplified macroscopic polarization induced by lattice distortion caused by the larger Nb ions, thereby improving piezo-photocatalytic efficiency. This research thus offers valuable insights into the direct design and fabrication of versatile catalytic systems, with applications spanning CO<sub>2</sub> valorization and beyond.

References

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