4.7 Article

Hydrothermal carbonation carbon-based photocatalysis under visible light: Modification for enhanced removal of organic pollutant and novel insight into the photocatalytic mechanism

期刊

JOURNAL OF HAZARDOUS MATERIALS
卷 426, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.jhazmat.2021.127821

关键词

Photocatalysis; Hydrothermal carbonation carbon; Organic pollutant; Fe modification; Visible light

资金

  1. National Natural Science Foundation of China [21906013]
  2. Natural Science Foundation of Liaoning Province of China [2020-MZLH-38]
  3. Open Foundation of Key Laboratory of Industrial Ecology and Environmental Engineering, MOE [KLIEEE-18-08]

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Hydrothermal carbonation carbon (HTCC) is a promising alternative for photocatalytic removal of contaminants from water. In this study, a unique photosensitization-like mechanism was found on Fe modified HTCC (Fe-HTCC) for effective removal of organic pollutants.
Hydrothermal carbonation carbon (HTCC) is emerging as a promising alternative for photocatalytic removal of contaminants from water. However, the catalytic activity of HTCC is limited by its poor charge transfer ability, and its photocatalytic mechanism remains unclear. Herein, a unique photosensitization-like mechanism was firstly found on Fe modified HTCC (Fe-HTCC) derived from glucose for effective removal of organic pollutants. Under visible light illumination, the organic pollutant coordinated with Fe-HTCC enabled electrons transfer from its highest occupied molecular orbital (HOMO) to conduction band (CB) of Fe-HTCC, which not only oxidized pollutant itself, but also generated oxygen-centered radical for reducing O-2 into O-2(center dot-) towards pollutant removal. The degradation kinetic constant of sulfamethoxazole (SMX) over Fe-HTCC was about 1024.4 and 20.5 times higher than that of HTCC and g-C3N4, respectively. The enhanced performance of Fe-HTCC was originated from dual role of Fe modification: one is to boost the electron-deficient C sites which prefer to coordinate with amino or hydroxyl of pollutants; the other is to enhance the linkage of discrete polyfuran chains in Fe-HTCC for effective electron transfer from pollutant to Fe-HTCC. This work provides new insight into the synthesis and mechanism of HTCC-based high-efficiency photocatalyst for water decontamination.

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