4.7 Article

Effect of activator/precursor mass ratio on sulfur-doped porous carbon for catalytic oxidation of aqueous organics with persulfate

Journal

CHEMOSPHERE
Volume 303, Issue -, Pages -

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.chemosphere.2022.135192

Keywords

Sulfur-doped; Activated carbon; Activator/precursor mass ratio; Persulfate; Aqueous organic

Funding

  1. National Natural Science Foundation of China [22006011, 51861145308]
  2. Natural Science Foundation of Jiangxi Provincial [20202ACBL213006]
  3. Doctor Scientific Startup Foundation of East China University of Technology [DHBK2019108, DHBK2019109]

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This study synthesized a series of sulfur-doped porous carbons through chemical activation, and investigated the influence of activator/precursor mass ratio on the catalytic performance. The experimental results showed that sulfur-doped samples exhibited improved catalytic activity and superior degradation efficiency for various aqueous organic pollutants compared to other advanced materials.
Sulfur-doped porous carbon has emerged as promising metal-free catalysts toward persulfate (PS) for catalytic oxidation of aqueous organics. Wherein, thermal pyrolysis with activator activation is very common for the preparation of activated carbon. However, the relationship between the mass ratio of activator/precursor and catalytic efficiency has been rarely reported. Herein, a series of sulfur-doped porous carbons (S-AC) were synthesized by one-step chemical activation of (Poly(phenylene sulphide) (PPS)) with K2CO3 as activator at K2CO3/PPS mass ratio ranging from 0 to 3. The effects of K2CO3/PPS mass ratio on its physicochemical properties and its catalytic performance for p-chlorophenol (PCP) degradation with PS were comprehensively investigated. Experiment results show that sulfur doping enhanced its catalytic activity and the sample synthesized with K2CO3/PPS mass ratio of 2 (S-AC-2) exhibited the best adsorption and catalytic performance toward PS for PCP removal. More importantly, S-AC-2 with PS could efficiently degrade various aqueous toxic organics other than PCP, and S-AC-2 showed superior catalytic activity to many recently reported advanced materials. In addition, the effects of several operate parameters, including reaction temperature, PS concentration, pH, humic acid, and inorganic ions on PCP oxidation were evaluated. By combining with the results of quenching experiments and EPR, the PS activation mechanism over S-AC-2 was revealed. Moreover, the reusability and regenerability of S-AC-2 was also studied. It indicates that S-AC-2 showed inferior reusability, but the catalytic activity of which could be fully recovered through thermal treatment at 600 degrees C for 2 h in N-2.

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