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Enhanced Piezocatalytic Activity of SrBaNbO Nanostructures by Engineering Surface Oxygen Vacancies and Self-Generated Heterojunctions. | LitMetric

AI Article Synopsis

  • Piezocatalysis effectively converts weak mechanical energy into chemical energy, offering a new approach for energy conversion.
  • A one-step hydrogen reduction method enhances the surface defects and heterojunctions in SrBaNbO nanorods, improving their properties significantly.
  • The optimized SrBaNbO/SrNbO nanocomposite shows remarkable increases in piezocatalytic activity, achieving up to 7 times greater degradation of rhodamine B and 10 times improved efficiency in hydrogen generation.

Article Abstract

Piezocatalysis provides a promising strategy for directly converting weak mechanical energy into chemical energy. In this work, we report a simple one-step hydrogen reduction route for the simultaneous generation of surface defects and heterojunctions in SrBaNbO nanorods fabricated by a molten salt synthesis method. The as-fabricated SrBaNbO/SrNbO nanocomposites with controllable oxygen vacancies exhibited excellent piezocatalytic activity under ultrasonic vibration, with an about 7 times enhancement of the rate constant ( = 0.0395 min) for rhodamine B degradation and an about 10 times enhancement of the water-splitting efficiency for hydrogen generation (109.4 μmol g h) for the optimized sample (H annealed at 500 °C) compared to pristine SrBaNbO nanorods. This work demonstrates the essential role of a well-modulated oxygen vacancy concentration in the piezocatalytic activity and provides an inspiring guide for designing self-generated heterojunction piezocatalysts.

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Source
http://dx.doi.org/10.1021/acsami.0c21202DOI Listing

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