Controllable growth on nano-graphite-supported ZrO 2 –MnO x bimetallic oxides for electrocatalytic antibiotic degradation: mechanism to boost the Mn 3+ /Mn 4+ redox cycle
Antibiotic contamination has become one of the most pressing problems in the field of water purification. Using nano-graphite (nano-G) as a carbon carrier, a ZrO 2 –MnO x /nano-G composite electrode with high catalytic activity was prepared by a hot pressing method based on MnO x /nano-G prepared by...
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Veröffentlicht in: | New journal of chemistry 2023-10, Vol.47 (38), p.17984-17998 |
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Hauptverfasser: | , , , , , , , |
Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Antibiotic contamination has become one of the most pressing problems in the field of water purification. Using nano-graphite (nano-G) as a carbon carrier, a ZrO
2
–MnO
x
/nano-G composite electrode with high catalytic activity was prepared by a hot pressing method based on MnO
x
/nano-G prepared by a sol–gel method. The results showed that the ZrO
2
–MnO
x
/nano-G electrode reduces charge transfer resistance while improving surface oxygen desorption ability. MnO
x
can catalyze the two-electron reduction of O
2
to produce H
2
O
2
, which can then be converted to ˙OH and ˙O
2
−
. Thereafter, the results of free radical capture experiments confirmed that ˙O
2
−
played a significant role in the electrocatalytic degradation of tetracycline hydrochloride (TC) by a ZrO
2
–MnO
x
/nano-G composite electrode. Furthermore, the abundant hydroxyl groups on the surface of nano-G and ZrO
2
particles can be used as active sites for catalyzing the Mn
3+
/Mn
4+
redox reaction, resulting in the generation of additional free radicals. The high-efficiency electrocatalytic degradation of TC was achieved through the synergistic action of the three. Under optimal reaction conditions, the degradation rate of TC reached 93% after 120 min of electrolysis. ZrO
2
–MnO
x
/nano-G displayed satisfactory stability following 10 cycles of degradation experiments. Finally, the potential TC degradation pathway was investigated using liquid chromatography-mass spectrometry (LC-MS) and density functional theory (DFT), and the degradation mechanism was clarified. |
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ISSN: | 1144-0546 1369-9261 |
DOI: | 10.1039/D3NJ03247G |