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纯四方氧化锆和钇掺杂四方氧化锆的动力学稳定性增强。

Enhanced kinetic stability of pure and Y-doped tetragonal ZrO2.

作者信息

Kogler Michaela, Köck Eva-Maria, Vanicek Stefan, Schmidmair Daniela, Götsch Thomas, Stöger-Pollach Michael, Hejny Clivia, Klötzer Bernhard, Penner Simon

机构信息

Institute of Physical Chemistry, ‡Institute of Inorganic and Theoretical Chemistry, and §Institute of Mineralogy and Petrography, University of Innsbruck , A-6020 Innsbruck, Austria.

出版信息

Inorg Chem. 2014 Dec 15;53(24):13247-57. doi: 10.1021/ic502623t. Epub 2014 Dec 4.

Abstract

The kinetic stability of pure and yttrium-doped tetragonal zirconia (ZrO2) polymorphs prepared via a pathway involving decomposition of pure zirconium and zirconium + yttrium isopropoxide is reported. Following this preparation routine, high surface area, pure, and structurally stable polymorphic modifications of pure and Y-doped tetragonal zirconia are obtained in a fast and reproducible way. Combined analytical high-resolution in situ transmission electron microscopy, high-temperature X-ray diffraction, and chemical and thermogravimetric analyses reveals that the thermal stability of the pure tetragonal ZrO2 structure is very much dominated by kinetic effects. Tetragonal ZrO2 crystallizes at 400 °C from an amorphous ZrO2 precursor state and persists in the further substantial transformation into the thermodynamically more stable monoclinic modification at higher temperatures at fast heating rates. Lower heating rates favor the formation of an increasing amount of monoclinic phase in the product mixture, especially in the temperature region near 600 °C and during/after recooling. If the heat treatment is restricted to 400 °C even under moist conditions, the tetragonal phase is permanently stable, regardless of the heating or cooling rate and, as such, can be used as pure catalyst support. In contrast, the corresponding Y-doped tetragonal ZrO2 phase retains its structure independent of the heating or cooling rate or reaction environment. Pure tetragonal ZrO2 can now be obtained in a structurally stable form, allowing its structural, chemical, or catalytic characterization without in-parallel triggering of unwanted phase transformations, at least if the annealing or reaction temperature is restricted to T ≤ 400 °C.

摘要

报道了通过涉及纯锆和锆 + 钇异丙醇盐分解的途径制备的纯四方氧化锆(ZrO₂)多晶型物以及钇掺杂四方氧化锆多晶型物的动力学稳定性。按照此制备程序,可以快速且可重复地获得高比表面积、纯的且结构稳定的纯四方氧化锆和钇掺杂四方氧化锆的多晶型变体。结合高分辨率原位透射电子显微镜分析、高温X射线衍射分析以及化学和热重分析表明,纯四方ZrO₂结构的热稳定性在很大程度上受动力学效应支配。四方ZrO₂在400℃下从非晶ZrO₂前驱体状态结晶,并且在快速加热速率下,在较高温度下进一步大量转变为热力学上更稳定的单斜变体时仍能保持。较低的加热速率有利于在产物混合物中形成数量不断增加的单斜相,特别是在接近600℃的温度区域以及再冷却期间/之后。如果即使在潮湿条件下将热处理限制在400℃,四方相也是永久稳定的,而与加热或冷却速率无关,因此可以用作纯催化剂载体。相比之下,相应的钇掺杂四方ZrO₂相的结构与加热或冷却速率或反应环境无关。现在可以以结构稳定的形式获得纯四方ZrO₂,至少在退火或反应温度限制在T≤400℃时,允许对其进行结构、化学或催化表征而不会同时引发不需要的相变。

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