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室温常压下负载于氮掺杂多孔碳上的钯催化剂对林丹的完全脱氯。

Complete dechlorination of lindane over N-doped porous carbon supported Pd catalyst at room temperature and atmospheric pressure.

机构信息

Agro-Environmental Protection Institute, Chinese Academy of Agricultural Sciences, No. 31, Fukang Road, Nankai District, Tianjin 300191, China.

College of Environmental Science and Engineering, Nankai University, No. 38, Tongyan Road, Jinnan District, Tianjin 300350, China.

出版信息

Sci Total Environ. 2020 Jun 1;719:137534. doi: 10.1016/j.scitotenv.2020.137534. Epub 2020 Feb 24.

Abstract

Transfer hydrogenation is highly effective for dechlorinating priority organic pollutants in wastewater. Lindane could be completely dechlorinated at room temperature and atmospheric pressure via transfer hydrogenation, in which Pd (3.1 wt%) supported on chitosan-derived porous carbon (3.1Pd@A600) and formic acid (FA) were used as catalyst and hydrogen source, respectively. Favorable catalytic activity of 3.1Pd@A600 is attributed to pyridinic N of the support that allowed Pd nanoparticles to be well-dispersed in the solid and to pyridinic N-Pd interactions that enhanced FA decomposition over that observed for commercial carbon supported Pd catalyst (5Pd@AC). In the reaction system containing 3.1Pd@A600 and FA, 99.7% lindane conversion and 100% dechlorination efficiency could be achieved at 25 °C and atmospheric pressure within 60 min. Benzene and cyclohexane were identified as end-products of lindane dechlorination. The transfer hydrogenation strategy developed in this study has wide application to chlorinated organic pollutants contained in actual waste streams.

摘要

转移氢化对废水中优先有机污染物的脱氯非常有效。在室温常压下,林丹可通过转移氢化完全脱氯,其中壳聚糖衍生的多孔碳(3.1Pd@A600)负载的钯(3.1wt%)和甲酸(FA)分别用作催化剂和氢源。3.1Pd@A600 具有良好的催化活性,这归因于载体的吡啶氮使钯纳米颗粒在固体中得到良好分散,以及吡啶氮-钯相互作用增强了 FA 的分解,这比商业碳负载钯催化剂(5Pd@AC)观察到的要强。在含有 3.1Pd@A600 和 FA 的反应体系中,在 25°C 和常压下,60 分钟内可实现 99.7%的林丹转化率和 100%的脱氯效率。苯和环己烷被鉴定为林丹脱氯的最终产物。本研究开发的转移氢化策略广泛适用于实际废水中含有的氯化有机污染物。

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