4.7 Article

Ameliorating Cu2+ reduction in microbial fuel cell with Z-scheme BiFeO3 decorated on flower-like ZnO composite photocathode

Journal

CHEMOSPHERE
Volume 287, Issue -, Pages -

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.chemosphere.2021.132384

Keywords

Microbial fuel cell; BiFeO3/ZnO; Photocathode; Sunlight; Electricity production; Copper reduction

Funding

  1. Ministry of Higher Education of Malaysia (MoHE) [FRGS/1/2019/TK02/UTAR/02/4]
  2. Universiti Tunku Abdul Rahman [UTARRF/2020-C1/S04, UTARRF/2020-C2/L02]
  3. Research funds of The Guangxi Key Laboratory of Theory and Technology for Environmental Pollution Control, China [1801K012, 1801K013]
  4. ASEAN Young Talented Scientist Program of Guangxi

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A BiFeO3/ZnO composite photocatalyst was successfully fabricated and used in a microbial fuel cell for the first time, achieving simultaneous reduction of Cu2+ ions and power generation. The 3 wt% BiFeO3/ZnO MFC showed the best performance with the maximum power density and Cu2+ removal efficiency, demonstrating good stability and reusability.
BiFeO3 nanoparticle decorated on flower-like ZnO (BiFeO3/ZnO) was fabricated through a facile hydrothermalreflux combined method. This material was utilized as a composite photocathode for the first time in microbial fuel cell (MFC) to reduce the copper ion (Cu2+) and power generation concomitantly. The resultant BiFeO3/ZnO-based MFC displayed distinct photoelectrocatalytic activities when different weight percentages (wt%) BiFeO3 were used. The 3 wt% BiFeO3/ZnO MFC achieved the maximum power density of 1.301 W m(-2) in the catholyte contained 200 mg L-1 of Cu2+ and the power density was greatly higher than those pure ZnO and pure BiFeO3 photocathodes. Meanwhile, the MFC exhibited 90.7% removal of Cu2+ within 6 h under sunlight exposure at catholyte pH 4. The addition of BiFeO3 nanoparticles not only manifested outstanding capability in harvesting visible light, but also facilitated the formation of Z-scheme BiFeO3/ZnO heterojunction structure to induce the charge carrier transfer along with enhanced redox abilities for the cathodic reduction. The pronounced electrical output and Cu2+ reduction efficiencies can be realized through the synergistic cooperation between the bioanode and BiFeO3/ZnO photocathode in the MFC. Furthermore, the developed BiFeO3/ZnO composite presented a good stability and reusability of photoelectrocatalytic activity up to five cyclic runs.

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