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Thermodynamics for Nanosystems: Grain and Particle-Size Dependent Phase Diagrams

机译:纳米系统的热力学:取决于粒度和粒度的相图

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Unusual phases are often observed in nanocrystalline materials; these are often assumed to be metastable phases produced by non-equilibrium synthesis techniques. The present analysis shows that, in fact, some such phases are stable, and their presence can be rigorously predicted by thermodynamics. Using dilatometry and high temperature differential scanning calorimetry (HTDSC) on zirconia samples with varying grain sizes and yttria content, we are able to show that the tetragonal-to- monoclinic phase transformation temperature varies linearly with inverse crystallite/grain size. This shift, which traverses hundreds of degrees, obeys a simple thermodynamic model that adds an interfacial energy term to the total free energy of the system. The relevant thermodynamic parameters, such as the change in volumetric enthalpy and entropy, change in surface enthalpy and entropy, and the interfacial energy and strain energy change involved in the transformation, are calculated from experiment. The result is an ability to redraw the Y2O3 - ZrO2 phase diagram with crystallite/grain size as a third variable.
机译:在纳米晶体材料中经常观察到不寻常的相。这些通常被认为是由非平衡合成技术产生的亚稳相。目前的分析表明,实际上,某些此类相是稳定的,并且可以通过热力学严格预测它们的存在。在不同晶粒度和氧化钇含量的氧化锆样品上使用膨胀计和高温差示扫描量热法(HTDSC),我们能够证明四方晶向单斜晶相转变温度随晶粒/晶粒尺寸的倒数线性变化。这种跨越数百度的位移遵循一个简单的热力学模型,该模型将界面能项添加到系统的总自由能中。由实验计算出相关的热力学参数,例如体积焓和熵的变化,表面焓和熵的变化以及相变涉及的界面能和应变能的变化。结果是可以重绘Y 2 O 3 -ZrO 2 相图,其中微晶/晶粒尺寸为第三个变量。

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