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Study of Hydrogen Adsorption on Pt/WO_3-ZrO_2 through Pt Sites

机译:通过Pt位点吸附Pt / WO_3-ZrO_2上的氢的研究

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The rate determining step and the energy barrier involved in hydrogen adsorption on Pt/WO_3-ZrO_2 were studied based on the assumption that the hydrogen adsorption occurs only through Pt sites. The rate of hydrogen adsorption on Pt/WO_3-ZrO_2 was measured in the adsorption temperature range of 323-573 K and an initial hydrogen pressure of 50 Torr. The rates of hydrogen uptake were very high for the initial few minutes and the adsorption continued for more than 5 h below 523 K. The hydrogen uptake far exceeded the H/Pt ratio of unity for all adsorption temperatures, indicating that the adsorption of hydrogen involved the dissociative adsorption of hydrogen on Pt sites to form hydrogen atoms, the spillover of hydrogen atoms onto the surface of the WO_3-ZrO_2 catalyst, the diffusion of spiltover hydrogen atom over the surface of the WO_3-ZrO_2 catalyst, and the formation of protonic acid site originated from hydrogen atom by releasing an electron in which the electron may react with a second hydrogen atom to form a hydride near the Lewis acid site. The rate determining step was the spillover with the activation energy of 12.3 kJ/mol. The rate of hydrogen adsorption cannot be expressed by the rate equation based on the assumption that the rate determining step is the surface diffusion. The activity of Pt/WO_3-ZrO_2 was examined on n-heptane isomerization in which the increase of hydrogen partial pressure provided positive-effect on the conversion of n-heptane and negative-effect on the selectivity towards iso-heptane.
机译:基于氢吸附仅通过Pt位点发生的假设,研究了氢吸附在Pt / WO_3-ZrO_2上的速率决定步骤和能量垒。在323-573 K的吸附温度范围和50 Torr的初始氢气压力下测量了氢在Pt / WO_3-ZrO_2上的吸附速率。在最初的几分钟内,氢气的吸收速率非常高,并且在523 K以下的吸附持续了超过5小时。在所有吸附温度下,氢气的吸附率都远远超过了H / Pt的1的比率,这表明氢气的吸附涉及氢在Pt位点上的解离吸附形成氢原子,氢原子向WO_3-ZrO_2催化剂表面的溢出,氢原子在WO_3-ZrO_2催化剂表面的扩散以及质子酸的形成该位点通过释放电子而从氢原子起源,该电子可与第二个氢原子反应在路易斯酸位点附近形成氢化物。速率确定步骤是活化能为12.3 kJ / mol的溢出。基于速率确定步骤是表面扩散的假设,不能用速率方程式表示氢吸附速率。在正庚烷异构化过程中检测了Pt / WO_3-ZrO_2的活性,其中氢分压的增加对正庚烷的转化具有正效应,对异庚烷的选择性具有负效应。

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