以 Pd/Al2O3 催化剂为现场加热源,通过氢气共燃轻松减排含氧挥发性有机化合物

Catalysts Pub Date : 2024-06-10 DOI:10.3390/catal14060372
Lutf Ullah, Sehrish Munsif, Long Cao, Jing-Cai Zhang, Wei-Zhen Li
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摘要

挥发性有机化合物 (VOC) 的催化燃烧通常需要外部能量输入,以通过电加热保持所需的反应温度。本研究通过氢气在传统钯/Al2O3 催化剂上与空气催化燃烧的实例,介绍了催化活性位点的内部现场加热。催化剂在室温下点燃氢气燃烧,无需电加热,因此温度很容易随 H2 浓度的变化而变化。使用 Pd/Al2O3 作为共用催化剂,甲醇、甲醛和甲酸等具有代表性的含氧挥发性有机化合物可以通过与 H2 共馈完全氧化成 CO2 和水,其爆炸极限低于 4%。XRD 和 STEM 显示,催化性能显然对新鲜和废弃状态下钯纳米颗粒的尺寸并不敏感。这为利用可再生绿色氢气以节能方式消除挥发性有机化合物污染物提供了一种选择。
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Facile Abatement of Oxygenated Volatile Organic Compounds via Hydrogen Co-Combustion over Pd/Al2O3 Catalyst as Onsite Heating Source
Catalytic combustion of volatile organic compounds (VOCs) usually requires external energy input to hold the desired reaction temperature via electric heating. This work presents an example of internal onsite heating of the catalytic active sites via hydrogen catalytic combustion with air over a conventional Pd/Al2O3 catalyst. Hydrogen combustion was ignited by the catalyst at room temperature without electric heating, and thus the temperatures were readily varied with the concentrations of H2. Representative oxygenated VOCs such as methanol, formaldehyde and formic acid can be completely oxidized into CO2 and water by co-feeding with H2 below its low explosion limit of 4% using Pd/Al2O3 as shared catalyst. The catalytic performance apparently is not sensitive to the sizes of Pd nanoparticles in fresh and spent states, as revealed by XRD and STEM. This provides an option for using renewable green hydrogen to eliminate VOC pollutants in an energy-efficient way.
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