首页> 外文期刊>Applied Catalysis, A. General: An International Journal Devoted to Catalytic Science and Its Applications >Nano-gold supported on Fe2O3: A highly active catalyst for low temperature oxidative destruction of methane green house gas from exhaust/waste gases
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Nano-gold supported on Fe2O3: A highly active catalyst for low temperature oxidative destruction of methane green house gas from exhaust/waste gases

机译:负载在Fe2O3上的纳米金:一种高活性催化剂,用于低温氧化分解废气/废气中的甲烷温室气体

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A number of nano-gold catalysts were prepared by depositing gold on different metal oxides (viz. Fe2O3, Al2O3, Co3O4, MnO2, CeO2, MgO, Ga2O3 and TiO2), using the homogeneous deposition precipitation (HDP) technique. The catalysts were evaluated for their performance in the combustion of methane (1 mol% in air) at different temperatures (300-600 °C) for a GHSV of 51,000 h~(-1). The supported nano-gold catalysts have been characterized for their gold loading (by ICP) and gold particle size (by TEM/HRTEM or XRD peak broadening). Among these nano-gold catalysts, the Au/Fe2O3 (Au loading = 6.1% and Au particle size = 8.5 nm) showed excellent performance. For this catalyst, temperature required for half the methane combustion was 387 °C, which is lower than that required for Pd(1%)/Al2O3 (400 °C) and Pt(1%)/ Al2O3 (500 °C) under identical conditions. A detailed investigation on the influence of space velocity (GHSV = 10,000-100,000 cm~3 g~(-1) h~(-1)) at different temperatures (200-600 °C) on the oxidative destruction of methane over the Au/Fe2O3 catalyst has also been carried out. The Au/Fe2O3 catalyst prepared by the HDP method showed much higher methane combustion activity than that prepared by the conventional deposition precipitation (DP) method. The XPS analysis showed the presence of Au in the different oxidation states (Au~0, Au~(1+) and Au~(3+)) in the catalyst.
机译:通过使用均相沉积沉淀(HDP)技术将金沉积在不同的金属氧化物(Fe2O3,Al2O3,Co3O4,MnO2,CeO2,MgO,Ga2O3和TiO2)上,制备了许多纳米金催化剂。评价了催化剂在51,000 h〜(-1)的GHSV在不同温度(300-600°C)下甲烷燃烧(空气中1 mol%)时的性能。负载型纳米金催化剂的特征是其载金量(通过ICP)和金的粒径(通过TEM / HRTEM或XRD峰展宽)。在这些纳米金催化剂中,Au / Fe2O3(Au含量= 6.1%,Au粒径= 8.5 nm)表现出优异的性能。对于这种催化剂,甲烷燃烧一半所需的温度为387°C,低于相同条件下Pd(1%)/ Al2O3(400°C)和Pt(1%)/ Al2O3(500°C)所需的温度。条件。在不同温度(200-600°C)下空速(GHSV = 10,000-100,000 cm〜3 g〜(-1)h〜(-1))对Au上方甲烷氧化破坏的影响的详细研究/ Fe 2 O 3催化剂也已进行。通过HDP方法制备的Au / Fe2O3催化剂显示出比常规沉积沉淀(DP)方法制备的更高的甲烷燃烧活性。 XPS分析表明催化剂中存在不同氧化态(Au〜0,Au〜(1+)和Au〜(3+))的Au。

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