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Cercosporin-Photocatalyzed [4+1]- and [4+2]-Annulations of Azoalkenes Under Mild Conditions
Published on: July 17, 2020
Coupling-oxidation process promoted ring-opening degradation of 2-mecapto-5-methyl-1,3,4-thiadizaole in wastewater
Chen Zhong1, He Zhao2, Qingzhen Han3
1National Key Laboratory of Biochemical Engineering, Institute of Process Engineering, Chinese Academy of Sciences, Beijing 100190, China; University of Chinese Academy of Sciences, Beijing 100049, China.
Abstract:
As an important raw material and intermediate of widely used antibiotics cefazolin and cefazedone, 2-mecapto-5-methyl-1,3,4-thiadizaole (MMTD) in antibiotic wastewater is hardly decyclized during wastewater treatment, posing great risk to the environment. This work proposed a green "coupling-oxidation" process to enhance ring-opening of MMTD during antibiotic wastewater treatment. In particular, the significant role of humic substances (HS) as pre-coupling reagent was emphasized. Real HS and different model HS, especially quinones, not only efficiently pre-coupled MMTD (>95%) but also promoted the MMTD removal by MnO2 (from 72.4% to 92.4%). Mass spectrometric analysis indicated that MMTD pre-coupled to HS would be oxidized with ring opening to environmental-friendly sulfonated HS, while direct oxidation of MMTD produced MMTD dimers or sulfonated MMTD that would not undergo ring opening. Theoretical calculations indicated that pre-coupling to HS enabled the ring-opening oxidation by increasing the nucleophilicity and decreasing ring-opening barrier of thiadiazole. Based on the density function theory (DFT), the global nucleophilicity index (Nu) followed the trend of HS-MMTD > MMTD dimer > sulfonated MMTD, while the ring-opening barrier followed the trend of HS-MMTD (274 kJ/mol) < first ring of MMTD dimers (286 kJ/mol) < MMTD (338 kJ/mol). Theoretical calculations further confirmed that the cross-coupled HS-MMTD intermediate was more likely to be decyclized than intermediates from direct oxidation. Moreover, nitrogen, acetaldehyde group, sulfate and CO2 were the products of thiadiazole ring degradation. Pre-coupling of MMTD with HS provides a new idea and strategy in developing a green and sustainable scheme for wastewater treatment.
Insights
Humic substances (HS) enhance antibiotic wastewater treatment by coupling with 2-mecapto-5-methyl-1,3,4-thiadiazole (MMTD), promoting its ring-opening oxidation and environmental-friendly degradation.
Area of Science:
- Environmental Chemistry
- Green Chemistry
- Wastewater Treatment
Background:
- 2-mercapto-5-methyl-1,3,4-thiadiazole (MMTD) is a persistent pollutant in antibiotic wastewater.
- MMTD poses environmental risks due to its resistance to conventional wastewater treatment.
- Antibiotic manufacturing wastewater requires effective and sustainable treatment strategies.
Purpose of the Study:
- To develop a green "coupling-oxidation" process for enhanced MMTD ring-opening.
- To investigate the role of humic substances (HS) in facilitating MMTD degradation.
- To elucidate the mechanism of HS-mediated MMTD oxidation and ring-opening.
Main Methods:
- Experimental investigation of MMTD coupling and oxidation with HS and MnO2.
- Mass spectrometric analysis to identify degradation products.
- Density Functional Theory (DFT) calculations to determine reaction mechanisms and energy barriers.
Main Results:
- Humic substances (HS) efficiently pre-coupled MMTD (>95%) and promoted its removal by MnO2 (from 72.4% to 92.4%).
- HS-MMTD intermediates underwent ring-opening oxidation to sulfonated HS, unlike direct MMTD oxidation products.
- DFT calculations confirmed HS pre-coupling decreases the MMTD ring-opening barrier, enhancing degradation.
Conclusions:
- The "coupling-oxidation" process using HS offers a green and sustainable approach for MMTD removal from antibiotic wastewater.
- HS act as effective pre-coupling reagents, facilitating the environmentally friendly ring-opening and degradation of MMTD.
- This strategy provides a novel pathway for treating persistent organic pollutants in industrial wastewater.
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