Biochar from Lemon Stalks: A Highly Active and Selective Carbocatalyst for the Oxidation of Sulfamethoxazole with Persulfate

Author:

Giannakopoulos Spyridon1,Vakros John12,Frontistis Zacharias3ORCID,Manariotis Ioannis D.4ORCID,Venieri Danae5ORCID,Poulopoulos Stavros G.6ORCID,Mantzavinos Dionissios1ORCID

Affiliation:

1. Department of Chemical Engineering, University of Patras, Caratheodory 1, University Campus, GR-26504 Patras, Greece

2. School of Sciences and Engineering, University of Nicosia, Nicosia 2417, Cyprus

3. Department of Chemical Engineering, University of Western Macedonia, GR-50132 Kozani, Greece

4. Environmental Engineering Laboratory, Department of Civil Engineering, University of Patras, University Campus, GR-26504 Patras, Greece

5. School of Chemical & Environmental Engineering, Technical University of Crete, GR-73100 Chania, Greece

6. Department of Chemical and Materials Engineering, School of Engineering and Digital Sciences, Nazarbayev University, Astana 010000, Kazakhstan

Abstract

Pyrolysis of lemon stalks at 850 °C under a limited oxygen atmosphere yields a highly active and selective biochar for the activation of persulfate ion and the oxidation of sulfamethoxazole (SMX). The biochar mainly consists of C and O atoms, with Ca and K being the most abundant minerals. It has a moderate specific surface area of 154 m2 g−1 and carbonate species, probably in the form of calcium carbonate. Complete degradation of 0.5 mg L−1 SMX can be achieved within 20 min using 500 mg L−1 sodium persulfate (SPS) and 100 mg L−1 biochar in ultrapure water (UPW). The acidic environment positively influences the degradation and adsorption processes, while the complexity of the water matrices usually has a negative impact on the degradation. The presence of chloride accelerates the oxidation of SMX, whose mechanism follows radical and non-radical pathways. Hydroxyl radicals seem to have the dominant contribution, while the electron transfer pathway was proven with electrochemical characterization. The biochar is stable for at least five cycles, and this makes it a good candidate for a sustainable, metal-free catalyst.

Funder

Hellenic Foundation for Research and Innovation

Publisher

MDPI AG

Subject

Physical and Theoretical Chemistry,Catalysis,General Environmental Science

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