Location and size regulation of manganese oxides within mesoporous silica for enhanced antibiotic degradation
|Updated:2026-01-06
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Location and size regulation of manganese oxides within mesoporous silica for enhanced antibiotic degradation
Chinese Journal of Chemical EngineeringVol. 48, Issue 8, Pages: 36-43(2022)
Affiliations:
1. School of Environmental and Chemical Engineering, Jiangsu University of Science and Technology,Zhenjiang,China,212003
2. School of Engineering, Edith Cowan University, Joondalup,WA,Australia,6027
3. State Key Laboratory of Materials-Oriented Chemical Engineering, College of Chemistry and Molecular Engineering, Nanjing Tech University,Nanjing,China,211816
4. School of Chemical Engineering and Advanced Materials, The University of Adelaide,SA,Adelaide,Australia,5005
Author bio:
Funds:
DOI:
CLC:
Published:2022
Accepted:
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Min Lu, Mengxuan Liu, Chunli Xu, Yu Yin, Lei Shi, Hong Wu, Aihua Yuan, Xiao-Ming Ren, Shaobin Wang, Hongqi Sun. Location and size regulation of manganese oxides within mesoporous silica for enhanced antibiotic degradation[J]. Chinese Journal of Chemical Engineering, 2022, 48(8): 36-43.
DOI:
Min Lu, Mengxuan Liu, Chunli Xu, Yu Yin, Lei Shi, Hong Wu, Aihua Yuan, Xiao-Ming Ren, Shaobin Wang, Hongqi Sun. Location and size regulation of manganese oxides within mesoporous silica for enhanced antibiotic degradation[J]. Chinese Journal of Chemical Engineering, 2022, 48(8): 36-43.DOI:
Location and size regulation of manganese oxides within mesoporous silica for enhanced antibiotic degradation
Refractory antibiotics in domestic wastewater are hard to be completely eliminated by conventional methods
and then lead to severe environmental contamination and adverse effects on public health. In present work
advanced oxidation processes (AOPs) are adopted to remove the antibiotic of sulfachloropyridazine (SCP). Nanosized Mn
2
O
3
was fabricated on the SBA-15 material to catalytically activate potassium peroxydisulfate (PDS) to generate reactive oxygen radicals of ?OH and SO
4
-
for SCP degradation. The effects of location and size of Mn
2
O
3
were explored through choosing either the as-made or template-free SBA-15 as the precursor of substrate. Great influences from the site and size of Mn
2
O
3
on the oxidation activity were discovered. It was found that Mn
2
O
3
with a large size at the exterior of SBA-15 (Mn-
tf
SBA) was slightly easier to degrade SCP at a low manganese loading of 1.0–2.0?mmol?g
?1
; however
complete SCP removal could only be achieved on the catalyst of Mn
2
O
3
with a refined size at the interior of SBA-15 (Mn-
as
SBA). Moreover
the SO
4
-
species were revealed to be the decisive radicals in the SCP degradation processes. Exploring the as-made mesoporous silica as a support provides a new idea for the further development of environmentally friendly catalysts.
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