Coupling band structure and oxidation-reduction potential to expound photodegradation performance difference of biochar-derived dissolved black carbon for organic pollutants under light irradiation.

Sci Total Environ

Key Laboratory of Integrated Regulation and Resource Development on Shallow Lakes, Ministry of Education, College of Environment, Hohai University, Nanjing 210093, PR China.

Published: May 2022

AI Article Synopsis

  • - The study examines how well rice straw biochar-derived dissolved black carbon (DBC) can break down Tetracycline and Methylene Blue under visible light, finding Tetracycline degrades more effectively (68% vs. 14%).
  • - Tetracycline degradation involves multiple reactive species like singlet oxygen and superoxide radicals, whereas only a few species participate in Methylene Blue degradation, indicating stronger interactions with Tetracycline.
  • - The research suggests that the by-products of Tetracycline degradation are less toxic, and proposes two possible breakdown pathways based on HPLC-MS results.

Article Abstract

Herein, the photodegradation performances difference of rice straw biochar-derived dissolved black carbon (DBC) for Tetracycline and Methylene Blue under visible light irradiation have been investigated. Tetracycline is easier degraded (degradation rate: 68%), followed by Methylene Blue (degradation rate: 14%). Singlet oxygen (O), superoxide radicals (O), holes (h) and triplet DBC (DBC*) are all make contribution for Tetracycline degradation by DBC, whereas just singlet oxygen (O), superoxide radicals (O) and DBC* are involved in the MB degradation by DBC. Singlet oxygen (O) maybe from the fulvic acid-like structure of DBC, while band structure of DBC can explain why superoxide radicals (O) and holes (h) can be formed, whereas hydroxyl radicals (OH) cannot be formed. The oxidation-reduction potential results of Tetracycline and Methylene Blue suggests that Tetracycline is easier to be oxidized than Methylene Blue as well as Methylene Blue is easier to be reduced than Tetracycline. Furthermore, experimental and theoretical results support that DBC has good interaction with Tetracycline, but the interaction between DBC and Methylene Blue is very weak. This likely explain why holes (h) is not detected for Methylene Blue degradation by DBC since Methylene Blue has not too much chance to meet holes (h). TC photodegradation intermediates are less toxic than Tetracycline based on QSAR method. Two possible photodegradation path of Tetracycline by DBC are proposed according to HPLC-MS results.

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http://dx.doi.org/10.1016/j.scitotenv.2022.153300DOI Listing

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