Effective green electro-Fenton process induced by atomic hydrogen for rapid oxidation of organic pollutants over a highly active and reusable carbon based palladium nanocatalyst

催化作用 化学 矿化(土壤科学) 羟基自由基 纳米颗粒 降级(电信) 还原剂 碳纤维 氧化还原 炭黑 循环伏安法 光化学 化学工程 无机化学 激进的 材料科学 电化学 纳米技术 复合数 有机化学 复合材料 氮气 天然橡胶 电极 物理化学 工程类 电信 计算机科学
作者
Ling Yang,Chen Chen,Ruiyu Bao,Zhegang Huang,Wenzhong Wang,Chen Zhang,Jianxin Xia,Junfeng Geng,Hua Li
出处
期刊:Applied Surface Science [Elsevier BV]
卷期号:602: 154325-154325 被引量:20
标识
DOI:10.1016/j.apsusc.2022.154325
摘要

Heterogeneous electro-Fenton (HEF) reaction is a highly efficient process for the degradation and mineralization of refractory organic pollutants in water. Since atomic hydrogen H*, currently widely used in electrocatalytic hydrogen dechlorination (ECHD) domains, can rapidly transfer one electron to H2O2 to generate OH and H2O, it has been considered as a promising species instead of Fe2+ for HEF reactions. However, H* is extremely unstable as it can be easily combined into hydrogen gas (H2), appropriate electro-catalytic material would be needed in order to speed up the production of H* on the one hand, and stabilize this in-situ formed species on the other. Here we show that house-synthesized Pd nanoparticles dispersed in carbon black (∼8 % Pd on carbon) which were further loaded on carbon felt (Pd/[email protected]) exhibited an excellent performance in HEF process for degradation of a variety of organic compounds (with the best of ∼99 % in 75 min). Radical scavenging experiments revealed that hydroxyl radical (OH) was the key reactive species, and cyclic voltammetry tests proved the stabilization of H* by Pd nanoparticles which in turn resulted in a significant increase in the yield of OH via the reduction of H2O2. The superior performance could be attributed to the Pd nanoparticles dispersed uniformly in carbon with a large number of active sites, thereby lowering the over potential to create a suitable microenvironment for H* generation and stabilization. In addition, the Pd/[email protected] composite was proved to be a little pH dependent, highly stable, and well recyclable for effective utilization of H* towards a rapid HEF oxidation for potentially many practical applications in wastewater treatment.
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