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首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Influence of the calcination temperature on the activity of hydroxyapatite-supported palladium catalyst in the methane oxidation reaction
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Influence of the calcination temperature on the activity of hydroxyapatite-supported palladium catalyst in the methane oxidation reaction

机译:煅烧温度对甲烷氧化反应中羟基磷灰石负载钯催化剂活性的影响

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摘要

In the present study, a series of four hydroxyapatite (HAP) supported palladium samples, with a Pd loading close to 0.5 %, obtained through their calcination at 773, 873, 973, or 1073 K has been investigated. These samples have been characterized using a wide battery of complementary techniques. From these studies, it was found that the rise of the calcination temperature induces a progressive dehydroxylation of the support and a structure evolution of the species containing Pd2+, from tetrahedral (Td) to square planar geometry (D-4h). Moreover, this enhances markedly the metal-support interactions. For instance, at the highest temperature (1073 K), Pd particles were found encapsulated by a thin support layer. Consequently, two distinct reducible species have been identified; one of them manifests SMSI. This increase in the Pd-HAP interaction strength seems to (i) expand the HAP lattice, (ii) change the Pd2+ coordination from Td to D-4h geometry, (iii) promote PdO reduction and (iv) suppress CO chemisorption. These entire properties do compensate the poor textural properties and benefit the efficiency and stability of the Pd active phase in methane oxidation reaction.
机译:在本研究中,通过其在773,873,973或1073K的煅烧中获得了一系列四种羟基磷灰石(HAP)支撑的钯样品,其Pd负载接近0.5%,得到0.5%。已经使用宽的互补技术表征了这些样品。从这些研究来看,发现煅烧温度的升高诱导载体的逐渐脱羟基化和含有Pd2 +的物种的结构演变,从四面体(Td)到方形平面几何形状(D-4h)。此外,这提高了金属支持相互作用。例如,在最高温度(1073k)处,发现通过薄的支撑层封装Pd颗粒。因此,已识别出两种明显的可降低物种;其中一个表现出SMSI。 PD-HAP相互作用强度的这种增加似乎(i)展开了Hap晶格,(ii)将PD2 +从TD改变为D-4H几何形状,(III)促进PDO减少和(IV)抑制共同化学吸附。这些整个性质确实可以补偿造影性能不良,并利用Pd活性相中甲烷氧化反应的效率和稳定性。

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