Literature DB >> 32581640

Efficient H2O2 electrogeneration at graphite felt modified via electrode polarity reversal: Utilization for organic pollutants degradation.

Wei Zhou1,2, Ljiljana Rajic3, Xiaoxiao Meng1, Roya Nazari2, Yuwei Zhao2, Yan Wang1, Jihui Gao1, Yukun Qin1, Akram N Alshawabkeh2.   

Abstract

Electrochemical synthesis of H2O2 offers a great potential for water treatment. However, a significant challenge is the development of efficient cathode materials for the process. Herein, we implement a practical electrochemical cathode modification to support efficient H2O2 electrogeneration via the reduction of dissolved anodic O2. Graphite felt (GF) is in situ anodically modified by electrode polarity reversal technique in an acid-free, low-conductivity electrolyte. The modified GF exhibits a significantly higher activity towards O2 reduction. Up to 183.3% higher H2O2 yield is obtained by the anodized GF due to the increased concentrations of oxygen-containing groups and the hydrophilicity of the surface, which facilitates electron and mass transfer between GF and the electrolyte. Another significant finding is the ability to produce H2O2 at a high yield under neutral pH and low current intensity by the modified GF (35% of the charge need to produce the same amount by unmodified GF). Long-term stability testing of the modified GF showed a decay in the electrode's activity for H2O2 production after 30 consecutive applications. However, the electrode regained its optimal activity for H2O2 production after a secondary modification by electrode polarity reversal. Finally, in situ electrochemically modified GF is more effective for removal of reactive blue 19 (RB19, 20 mg/L) and ibuprofen (IBP, 10 mg/L) by the electro-Fenton process. The modified GF removed 62.7% of RB19 compared to only 28.1% by the unmodified GF in batch reactors after 50 min. Similarly, 75.3% IBP is removed by the modified GF compared to 57.6% by the unmodified GF in a flow-through reactor after 100 min.

Entities:  

Keywords:  Electro-Fenton; Graphite felt; Hydrogen peroxide; Hydroxyl radicals; Oxygen-containing group

Year:  2019        PMID: 32581640      PMCID: PMC7314056          DOI: 10.1016/j.cej.2019.01.175

Source DB:  PubMed          Journal:  Chem Eng J        ISSN: 1385-8947            Impact factor:   13.273


  4 in total

Review 1.  Electrosynthesis of H2O2 through a two-electron oxygen reduction reaction by carbon based catalysts: From mechanism, catalyst design to electrode fabrication.

Authors:  Jingkun An; Yujie Feng; Qian Zhao; Xin Wang; Jia Liu; Nan Li
Journal:  Environ Sci Ecotechnol       Date:  2022-03-30

2.  Performance of graphite felt as a cathode and anode in the electro-Fenton process.

Authors:  Junfeng Li; Dongbao Song; Keqing Du; Zhaoyang Wang; Chun Zhao
Journal:  RSC Adv       Date:  2019-11-25       Impact factor: 4.036

3.  O-doped Graphitic Granular Biochar Enables Pollutants Removal via Simultaneous H2O2 Generation and Activation in Neutral Fe-free Electro-Fenton Process.

Authors:  Wei Zhou; Feng Li; Yanlin Su; Junfeng Li; Shuai Chen; Liang Xie; Siyu Wei; Xiaoxiao Meng; Ljiljana Rajic; Jihui Gao; Akram N Alshawabkeh
Journal:  Sep Purif Technol       Date:  2021-01-12       Impact factor: 7.312

4.  Fabrication of gelatin microspheres containing ammonium hydrogen carbonate for the tunable release of herbicide.

Authors:  He Liu; Zheng Zhang; Jiaxin Li; Wanyu Zang; Qing Yang; Jun Yang
Journal:  Biotechnol Lett       Date:  2021-07-18       Impact factor: 2.461

  4 in total

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