Carbonization of methylene blue adsorbed on palygorskite for activating peroxydisulfate to degrade bisphenol A: An electron transfer mechanism

过氧二硫酸盐 碳化 坡缕石 吸附 化学 亚甲蓝 双酚A 机制(生物学) 解吸 电子转移 降级(电信) 光化学 活性炭 化学工程 无机化学 核化学 有机化学 催化作用 光催化 哲学 环氧树脂 工程类 认识论 电信 计算机科学
作者
Peixun Zhai,Haibo Liu,Fuwei Sun,Tianhu Chen,Hanlin L. Wang,Ziyang Chu,Can Wang,Meng Zhong Liu,Dong Chen
出处
期刊:Applied Clay Science [Elsevier]
卷期号:216: 106327-106327 被引量:4
标识
DOI:10.1016/j.clay.2021.106327
摘要

As a natural and environmentally friendly adsorbent, palygorskite (Pal) has been approved to be excellent for the adsorption of dyes . However, the spent Pal is difficult to be regenerated through normal desorption methods, and thus, becoming a solid waste. In this study, methylene blue (MB) was adsorbed by Pal, and the MB absorbed on palygorskite (MP) was carbonized at different temperatures. The carbonized MP (CMP) was used for peroxydisulfate (PDS) activation to degrade bisphenol A (BPA). The effects of carbonization temperature, pH values, PDS concentration, and catalysts dosage on BPA degradation were investigated. The results show that the MP carbonized at 800 °C (CMP800) has the best activation performance due to the high degree of carbon defectivity and high specific surface area. The CMP800 can effectively degrade BPA over a wide pH range from 3 to 9 and is extremely resistant to the effects of various anions, such as Cl − , NO 3 − , HCO 3 − , and H 2 PO 4 − . Based on quenching experiments, electron spin resonance (ESR), and electrochemical analysis results, a non-radical pathway involving electron transfer from BPA to PDS is responsible for the degradation of pollutants. Moreover, the CMP800 has a high total organic carbon (TOC) removal efficiency of 83%, high stability in three cycles, and low PDS consumption. This study demonstrates the feasibility of the treatment and utilization of the waste Pal, which also provides a carbon-based activator for the activation of PDS to degrade organic contaminants . • The methylene blue adsorbed on Pal was carbonized at 500–900 °C (CMP500-900). • CMP500-900 was used for peroxydisulfate (PDS) activation to degrade bisphenol A. • CMP800 exhibited high reactivity for PDS activation through electron tranfer way. • The degradation pathways of bisphenol A in CMP800/PDS system were given.

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