首页> 外文期刊>Journal of nanotechnology >Dechlorination of Environmental Contaminants Using a Hybrid Nanocatalyst: Palladium Nanoparticles Supported on Hierarchical Carbon Nanostructures
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Dechlorination of Environmental Contaminants Using a Hybrid Nanocatalyst: Palladium Nanoparticles Supported on Hierarchical Carbon Nanostructures

机译:使用杂化纳米催化剂对环境污染物进行脱氯:分层碳纳米结构上负载的钯纳米颗粒

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This paper demonstrates the effectiveness of a new type of hybrid nanocatalyst material that combines the high surface area of nanoparticles and nanotubes with the structural robustness and ease of handling larger supports. The hybrid material is made by fabricating palladium nanoparticles on two types of carbon supports: as-received microcellular foam (Foam) and foam with carbon nanotubes anchored on the pore walls (CNT/Foam). Catalytic reductive dechlorination of carbon tetrachloride with these materials has been investigated using gas chromatography. It is seen that while both palladium-functionalized carbon supports are highly effective in the degradation of carbon tetrachloride, the rate of degradation is significantly increased with palladium on CNT/Foam. However, there is scope to increase this rate further if the wettability of these structures can be enhanced in the future. Microstructural and spectroscopic analyses of the fresh and used catalysts have been compared which indicates that there is no change in density or surface chemical states of the catalyst after prolonged use in dechlorination test. This implies that these materials can be used repeatedly and hence provide a simple, powerful, and cost-effective approach for dechlorination of water.
机译:本文展示了一种新型的杂化纳米催化剂材料的有效性,该材料结合了纳米颗粒和纳米管的高表面积以及结构坚固性和易于处理较大载体的特点。杂化材料是通过在两种类型的碳载体上制造钯纳米颗粒制成的:原样的微孔泡沫(Foam)和锚固在孔壁上的碳纳米管泡沫(CNT / Foam)。已经使用气相色谱法研究了用这些材料对四氯化碳进行催化还原脱氯。可以看出,尽管两种钯官能化的碳载体在四氯化碳的降解中都非常有效,但是钯/碳纳米管/泡沫塑料的降解速度却大大提高。但是,如果将来可以提高这些结构的润湿性,则可以进一步提高该速率。比较了新鲜和使用过的催化剂的微观结构和光谱分析,表明在脱氯试验中长期使用后,催化剂的密度或表面化学状态没有变化。这意味着这些材料可以重复使用,因此提供了一种简单,功能强大且具有成本效益的水脱氯方法。

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