| Literature DB >> 33330379 |
Xinhui Xia1, Fengyi Zhu1, Jianju Li1, Haizhou Yang1, Liangliang Wei1, Qiaoyang Li1, Junqiu Jiang1, Guangshan Zhang2, Qingliang Zhao1.
Abstract
High levels of toxic organic pollutants commonly detected during domestic/industrial wastewater treatment have been attracting research attention globally because they seriously threatenEntities:
Keywords: activation approaches; degradation kinetics; reaction mechanisms; sulfate-radicals; wastewater
Year: 2020 PMID: 33330379 PMCID: PMC7729018 DOI: 10.3389/fchem.2020.592056
Source DB: PubMed Journal: Front Chem ISSN: 2296-2646 Impact factor: 5.221
Summary of the different persulfate (PS) and peroxymonosulfate (PMS) activation approaches: pathways, mechanism, and key parameters.
| Physical activation | Heating | Fission of O–O bond | (i) Higher temperature can cleave O–O bond, whereas excessive temperature may cause side effects | Zhao et al., | |
| UV | Fission of O–O bond | Usually under 254 nm wavelength, depending on dissolved oxygen concentration | Yang Q. et al., | ||
| Ultrasound | Fission of O–O bond | Similar to heating activation | Nasseri et al., | ||
| Chemical activation | Alkaline activation | Hydrolysis of PS and PMS to hydrogen peroxide | Often pH > 11 | Fernandes et al., | |
| Transition metal ions | Single electron transfer | Preparation of catalysts is more economical for a homogeneous system than that of a heterogeneous system | Liu L. et al., | ||
| Carbon-based materials | Single electron transfer | Activated carbon is relatively economical | Zhao et al., | ||
Figure 1Generation of sulfate radical via persulfate/peroxymonosulfate (PS/PMS) activation under different reaction conditions.
Performance of typical pollutants under different reaction conditions.
| PPCPs | Carbamazepine (CBZ) | LaCoO3/PMS | • LaCoO3 calcinated at 600°C showed the best performance | Guo et al., |
| Levofloxacin hydrochloride (LVF) | CoFeO2@CN/PMS | • CoFeO2@CN/PMS performed better than CoFeO2@CN and PMS | Pi et al., | |
| Ibuprofen (IBP) | N-doped graphene aerogel (NGA)/PMS | • Catalytic activity increase exhibited NGA>NrGO>GA | Wang et al., | |
| Sulfachloropyridazine (SCP) | Ni@NPC/PS | • Catalytic activity of Ni@NPC>GO>N-rGO>MWCNTs | Kang et al., | |
| Ketoprofen (KET) | Heat/PS | • 100% of 10 μM KET was removed in 60 min at pH = 3 | Feng et al., | |
| Caffeine (CAF) | Co-MCM41/PMS | • Co-MCM41/PMS performed better than CoO/PMS or Co3O4/PMS | Qi et al., | |
| Diclofenac (DCF) | BFO/PMS | • 65.4% of 0.025 mM DCF was removed in 60 min at pH 3.0 using 0.5 mM PMS and 0.3 g/L BFO | Han et al., | |
| Sulfonamides (SAs) | Heat/PS | • Conditions: reaction time 3 h, reaction temperature 60°C, 2 mM PS and 30 μM SAs, the removal rate of SMX, SIX, STZ, and SMT were 98, 100, 97, and 81%, respectively | Zhou et al., | |
| EDCs | Bisphenol A (BPA) | Magnetic CFA/PS | • 76.9% of 0.22 mmol/L BPA was removed at 20°C and pH 5 in 60 min using 2 g/L magnetic CFA and 22 mM PS | Xu et al., |
| • 76.5% of 0.22 mmol/L BPA was removed at 20°C and pH 5 in 60 min using 2 g/L magnetic CFA and 22 mM PS | ||||
| • 70.2% of 0.22 mmol/L BPA was removed at 20°C and pH 5 in 60 min using 2 g/L magnetic CFA and 22 mM PS | ||||
| Bisphenol A (BPA) | CoS@GN-60/PMS | • 92% of 20 mg/L BPA was removed at pH 6.65 in 8 min using 0.1 g/L catalysts and 0.1 g/L PMS | Zhu et al., | |
| Bisphenol F (BPF) | Sr2FeCoO6/PMS | • Catalytic activity of Sr2FeCoO6>SrCoO3>SrFeO3
| Hammouda et al., | |
| Tetrabromobisphenol A (TBBPA) | Co(II)/PMS | • More than 96% of 9.2 μM TBBPA was removed at 20°C and pH 8.0 using 0.5 μM Co(II) and 0.2 mM PMS | Ji et al., | |
| DBPs | Iohexol | Co(II)/PMS | • Almost 100% of 50 μM iohexol was removed in 30 min at 25°C and pH 7.0 using 4 mM PMS | Zhao et al., |
| Bromide | UV/PMS | • 100% of bromide (initial concentration of 20 μM) was removal in 20 min at pH 7.0 and UV intensity 2.19 μE L−1 s−1 using ≥300 μM PS | Fang and Shang, | |
| HCOMs | Metolachlor (MET) | Co(II)/PMS | • 100% of 10 mg/L MET was removed in 40 min at 25°C and pH 6.5 using 0.2 g/L CoFe2O4 and 3 mM PMS | Liu C. et al., |
| Clopyralid (CLP) | Heat/PS | • The removal rate of CLP increased with increasing PS concentration | Yang et al., | |
| Landfill leachate | Heat/PS | • Acidic condition favored persulfate oxidation of leachate organics | Deng and Ezyske, | |
Chemical and structural characteristics of the intermediates of different pollutants during the PS/PMS oxidation.
| Carbamazepine | LaCoO3/PMS | Guo et al., | |||
| Levofloxacin hydrochloride (LVF) | CoFeO2@CN/PMS | Pi et al., | |||
| Ketoprofen (KET) | Heat/PS | Feng et al., | |||
| Caffeine (CAF) | Co-CM41/PMS | Qi et al., | |||
| Diclofenac (DCF) | Bismuth ferrite (BFO)/PMS | Han et al., | |||
| Bisphenol A (BPA) | ZVI/PS | Zhao et al., | |||
| Bisphenol F (BPF) | Hammouda et al., | ||||
Figure 2The role of sulfate radical in the sulfate-radical-based advanced oxidation process (SR-AOP) systems.
Kinetics model and rate constants of organic pollutants via SR-AOPs.
| Ketoprofen | Pseudo-first-order | 0.38 min−1 | Feng et al., |
| SCP | Pseudo-first-order | 0.46 ± 2.3 × 10−3 min−1 | Kang et al., |
| Ibuprofen | Pseudo-first-order | 0.0175 min−1 | Wang et al., |
| CBZ | Pseudo-first-order | 0.26 min−1 | Guo et al., |
| Sulfonamides | Pseudo-first-order | Zhou et al., | |
| DEA | Pseudo-second-order | 2.11 × 10−3 cm2mJ−1 | Khan et al., |
| DIA | Pseudo-second-order | 4.6 × 10−3 cm2mJ−1 | Khan et al., |
| Clopyralid | Pseudo-first-order | 3.29 × 10−2 min−1 | Yang et al., |
| BPA | Pseudo-first-order | 0.0556 min−1 | Xu et al., |
| BPS | Pseudo-first-order | 0.0445 min−1 | Liu Y. et al., |
| BPF | Pseudo-first-order | 0.026 min−1 | Hammouda et al., |
Figure 3The possible mechanism of PS/PMS activation.