High-efficient synergy of piezocatalysis and photocatalysis in bismuth oxychloride nanomaterial for dye decomposition

Chemosphere. 2019 Aug:228:212-218. doi: 10.1016/j.chemosphere.2019.04.121. Epub 2019 Apr 19.

Abstract

In this work, it is found that the hydrothermally-synthesized bismuth oxychloride can behave both the piezocatalysis and photocatalysis for the Rhodamine B dye decomposition. ∼99% decomposition efficiency is achieved after both vibrating and lighting the Rhodamine B dye solution for ∼96 min with the addition of bismuth oxychloride catalyst, while the ∼72% and ∼26% decomposition efficiencies are obtained for only photocatalysis or only piezocatalysis respectively. In bi-catalysis, the mechanical strain produced due to vibration will directly provide an electric field that will increase the separation between the photo-induced electron-hole pairs, yielding to the enhanced decomposition performance of bi-catalysis. There is no significant change in the bi-catalytic performance of bismuth oxychloride nanomaterial observed after being recycled four times. Bismuth oxychloride catalyst is potential for the bi-catalytic decomposition treatment of wastewater through harvesting both the environmental vibration energy and light energy.

Keywords: Bismuth oxychloride; Dye decomposition; Photocatalysis; Piezocatalysis; Piezoelectric effect; Synergy of bi-catalysis.

MeSH terms

  • Bismuth / chemistry*
  • Catalysis
  • Environmental Restoration and Remediation / methods*
  • High-Energy Shock Waves
  • Light
  • Nanostructures / chemistry
  • Rhodamines / chemistry*
  • Wastewater / chemistry

Substances

  • Rhodamines
  • Waste Water
  • bismuth oxychloride
  • rhodamine B
  • Bismuth