Insights into the Electrolyte Roles of Electrochemically Activated Peroxymonosulfate in a CeO2 Electrode for RhB Degradation
作者:Jing Di, Shihao You, Zhibo Li, Ruiqin Yang, Qixin Yang, Yin Li, Yesong Gao, Xikun Gai · 发表于:Industrial & Engineering Chemistry Research · 年份:2025 · DOI:10.1021/acs.iecr.5c00866 · 被引用次数:3 · 研究领域:Advanced oxidation water treatment、Catalytic Processes in Materials Science、Metal Extraction and Bioleaching
In the electrochemically activated peroxymonosulfate (EC-PMS) process, the electrolyte plays a pivotal role affecting the degradation efficiency, reusability, and cost. However, the function of the electrolyte on active species and degradation pathways remains uncertain to date. To address this, this study explores the degradation of Rhodamine B (RhB) using EC-PMS with a CeO 2 electrode (EC/CeO 2 + PMS) under three electrolytes (H 2 SO 4, Na 2 SO 4, and NaOH). While Na 2 SO 4 was used as the electrolyte, the EC/CeO 2 + PMS system achieved 46.6% RhB removal within 60 min (100 mg/L RhB, 0.5 g/L PMS, and −10 mA/cm 2 ), outperforming standalone PMS (30.8%) or EC (17.7%) systems. Notably, Ce ion leaching was electrolyte-dependent. The value reached 6.2 mg/L in H 2 SO 4, while it remained much lower in Na 2 SO 4 (0.06 mg/L) and NaOH (0.08 mg/L), demonstrating exceptional stability in neutral/alkaline conditions. Further analysis indicated that electrochemical activation could efficiently accelerate the Ce 4+ /Ce 3+ circulation, thereby significantly enhancing the degradation process. Quenching experiments and electron spin resonance studies exhibited that the primary radicals varied depending on the electrolyte. Surface-bound radicals were the dominant reactive oxidation species in the H 2 SO 4 electrolyte, while surface-bound radicals and singlet oxygen ( 1 O 2 ) codominated in the Na 2 SO 4 electrolyte. In contrast, 1 O 2 was the main species in the NaOH electrolyte. Finally, the...