4.6 Article

Converting Hybrid Mechanisms to Electron Transfer Mechanism by Increasing Biochar Pyrolysis Temperature for the Degradation of Sulfamethoxazole in a Sludge Biochar/Periodate System

期刊

CATALYSTS
卷 12, 期 11, 页码 -

出版社

MDPI
DOI: 10.3390/catal12111431

关键词

pyrolysis temperature; sludge biochar; periodate; nonradical degradation; electron transfer

资金

  1. National Natural Science Foundation of China
  2. Fundamental Research Funds for the Central Universities
  3. Scottish Government's Rural and Environment Science and Analytical Service Division (RESAS)
  4. [51878523]
  5. [52170171]
  6. [U1703120]
  7. [WUT: 193108003]
  8. [2019IVA032]
  9. [215208002]

向作者/读者索取更多资源

This study prepared sludge biochar at different pyrolysis temperatures and used it to activate periodate for the degradation of sulfamethoxazole. The results showed that higher pyrolysis temperatures resulted in increased adsorption capacity and activation ability of sludge biochar, leading to enhanced degradation of sulfamethoxazole.
In this study, sludge biochar was prepared under four pyrolysis temperatures (SBC300, SBC500, SBC700, and SBC900) and then was employed to activate periodate (PI) for the degradation of sulfamethoxazole (SMX). Various characterization methods were employed to investigate the effect of pyrolysis temperature on the physicochemical properties of sludge biochar and the activation capacity of periodate. The SMX adsorption capacity of SBCs and the ability of activating PI to degrade SMX increased with the increasing pyrolysis temperature. The degradation of SMX by the SBCs/PI systems was highly dependent on the initial pH of the solution and the dosage of SBCs. Mechanistic studies indicated that the degradation of SMX by the SBCs/PI system was mainly based on an electron-mediated transfer mechanism. Additionally, the electron transfer capacity of the SBCs affected the defects and the degree of graphitization. The contribution of free radicals to SMX degradation decreases with increasing pyrolysis temperature. Toxicity experiments demonstrated that the toxic elimination of SMX by the SBCs/PI system was enhanced with increasing pyrolysis temperature.

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