4.7 Article

Novel Z-scheme Binary Zinc Tungsten Oxide/Nickel Ferrite Nanohybrids for Photocatalytic Reduction of Chromium (Cr (VI)), Photoelectrochemical Water Splitting and Degradation of Toxic Organic Pollutants

期刊

JOURNAL OF HAZARDOUS MATERIALS
卷 423, 期 -, 页码 -

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ELSEVIER
DOI: 10.1016/j.jhazmat.2021.127044

关键词

Binary heterostructured photocatalysts; Z-scheme; Photocatalysis; Photoelectrochemical activity; Chromium reduction; Hazardous pollutants

资金

  1. National Research Foundation of Korea (NRF), Republic of Korea [2020R1A2C1012439]
  2. King Fahd University of Petroleum and Minerals (KFUPM), Saudi Arabia [DF201004]

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A NiFe2O4-ZnWO4 nanocomposite was synthesized using a simple hydrothermal method, showing enhanced photocatalytic performance and water splitting capability. The nanocomposite has great potential for various applications due to its outstanding properties.
A simple hydrothermal approach was demonstrated for synthesizing a coupled NiFe2O4-ZnWO4 nanocomposite, wherein one-dimensional ZnWO4 nanorods were inserted into two-dimensional NiFe2O4 nanoplates. Herein, we evaluated the photocatalytic removal of Cr(VI), and degradation of tetracycline (TC) and methylene blue (MB) by the nanocomposite, as well as its ability to split water. The ZnWO4 nanorods enriched the synergistic interactions, upgraded the solar light fascination proficiency, and demonstrated outstanding detachment and migration of the photogenerated charges, as confirmed by a transient photocurrent study and electrochemical impedance spectroscopy measurements. Compared to pristine NiFe2O4 and ZnWO4, the NiFe2O4-ZnWO4 nanocomposite exhibited a higher Cr(VI) reduction (93.5%) and removal of TC (97.9%) and MB (99.6%). Radical trapping results suggested that hydroxyl and superoxide species are dominant reactive species, thereby facilitating the Z-scheme mechanism. Furthermore, a probable photocatalytic mechanism was projected based on the experimental results. The photoelectrochemical analysis confirmed that NiFe2O4-ZnWO4 exhibited minor chargetransfer resistance and large photocurrents. We propose a novel and efficient approach for designing a coupled heterostructured nanocomposites with a significant solar light ability for ecological conservation and water splitting.

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