Abstract
In Fenton-like reaction, the pollutant degradation performance was closely related to the peroxymonosulfate (PMS) activation activity. As a Lewis base, PMS activation could be accelerated by either Lewis acid-base reaction, or the high local concentrations. To simultaneously realize two aims, herein, a nanoreactor was prepared, where SO42− modified Co3O4 nanoparticles were encapsulated inside Co2SiO4 shell. The Lewis acidity on Co3+/Co2+ catalytic sites was improved with the help of SO42− possessed powerful electron attraction, leading to a rapid Lewis acid-base reaction. Under the confinement effect, both PMS and generated reactive oxygen specie concentrations were boosted inside the cavity, resulting in a rapid transformation of SO4•‐+•OH to 1O2. Benefiting from two advantages, metronidazole degradation efficiency over nanoreactor at 16.0 min was 92.2%, mineralization efficiency was 68.9%, PMS activation efficiency was 44.0%, and PMS utilization efficiency was 67.2%, much higher than the reference catalysts. Meanwhile, the leached cobalt ion concentration was only 0.48 mg/L, lower than samples without Co2SiO4 shell protection. This work provided a novel way to engineer catalyst surface property inside a nanoreactor, and realized Fenton-like reaction acceleration via combination of confinement effect and Lewis acid-base reaction.
| Original language | English |
|---|---|
| Article number | 106582 |
| Journal | Journal of Water Process Engineering |
| Volume | 69 |
| DOIs | |
| State | Published - Jan 2025 |
| Externally published | Yes |
Keywords
- Confinement effect
- Fenton-like reaction
- Lewis acid-base reaction
- Sulfate
- Yolk@shell nanoreactor
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