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富氢球驱动 Pd/C 催化剂高效催化还原对氯苯酚和六价铬。

Efficient hydrogenation of p-chlorophenol and Cr(VI) driven by hydrogen rich balls over Pd/C catalysts.

机构信息

Ministry of Education Key Laboratory for Yellow River and Huai River Water Environment and Pollution Control, School of Environment, Henan Normal University, Xinxiang, Henan 453007, China; State Key Laboratory of Water Environment Simulation, School of Environment, Beijing Normal University, Beijing 100875, China.

State Key Laboratory of Water Environment Simulation, School of Environment, Beijing Normal University, Beijing 100875, China.

出版信息

J Hazard Mater. 2022 Sep 5;437:129434. doi: 10.1016/j.jhazmat.2022.129434. Epub 2022 Jun 21.

Abstract

Catalytic hydrogenation can selectively destabilize and detoxify specific contaminants in water. Herein, to explore safer and more efficient hydrogen sources, hydrogen rich balls (HRBs) were researched and applied for hydrogenating p-chlorophenol and Cr(VI) over Pd/C catalyst. The results showed that HRBs can realize the sustained release of H by replacing the hydrogen in water, and generate the refined (micro/nano-sized) H bubble, which effectively improves the adsorption and activation effectively of H molecules on Pd/C catalyst, and the hydrogen atoms utilization efficiency during p-chlorophenol hydrodechlorination is as high as 3.5 %. Continuous flow experiments showed that rapid removal of p-chlorophenol with different concentrations could be achieved by adjusting the flow rate. Moreover, the high-toxic Cr(VI) was successfully reduced to the low-toxic Cr(III) in an appropriate pH range. This research is of far-reaching significance for realizing the detoxification of environmental pollutants and promoting the development of hydrogen economy.

摘要

催化氢化可以选择性地使水中的特定污染物失稳和解毒。在此,为了探索更安全、更高效的氢气来源,研究并应用富氢球(HRBs)在 Pd/C 催化剂上对 p-氯苯酚和 Cr(VI)进行加氢。结果表明,HRBs 可以通过取代水中的氢来实现 H 的持续释放,并生成精制(微/纳米级)H 泡,这有效地提高了 H 分子在 Pd/C 催化剂上的吸附和活化效率,并且在 p-氯苯酚加氢脱氯过程中,氢原子的利用率高达 3.5%。连续流动实验表明,通过调整流速可以实现不同浓度的 p-氯苯酚的快速去除。此外,在适当的 pH 范围内,高毒性的 Cr(VI)被成功还原为低毒性的 Cr(III)。这项研究对于实现环境污染物的解毒和促进氢能经济的发展具有深远的意义。

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