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Competing covalent and ionic bonding in Ge-Sb-Te phase change materials

机译:在Ge-sb-Te相变材料中竞争共价键和离子键

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摘要

GeSbTe and related phase change materials are highly unusual in that they can be readily transformed between amorphous and crystalline states using very fast melt, quench, anneal cycles, although the resulting states are extremely long lived at ambient temperature. These states have remarkably different physical properties including very different optical constants in the visible in strong contrast to common glass formers such as silicates or phosphates. This behavior has been described in terms of resonant bonding, but puzzles remain, particularly regarding different physical properties of crystalline and amorphous phases. Here we show that there is a strong competition between ionic and covalent bonding in cubic phase providing a link between the chemical basis of phase change memory property and origins of giant responses of piezoelectric materials (PbTiO, BiFeO). This has important consequences for dynamical behavior in particular leading to a simultaneous hardening of acoustic modes and softening of high frequency optic modes in crystalline phase relative to amorphous. This different bonding in amorphous and crystalline phases provides a direct explanation for different physical properties and understanding of the combination of long time stability and rapid switching and may be useful in finding new phase change compositions with superior properties.
机译:GeSbTe和相关的相变材料非常不寻常,因为它们可以通过非常快的熔化,淬灭和退火循环在非晶态和结晶态之间转换,尽管所得到的态在环境温度下的寿命极长。这些状态具有显着不同的物理特性,包括与普通玻璃形成剂(如硅酸盐或磷酸盐)形成强烈反差的可见光中非常不同的光学常数。已经就共振键合描述了这种行为,但是仍然存在困惑,特别是关于结晶相和非晶相的不同物理性质。在这里,我们显示立方相中的离子键与共价键之间存在激烈竞争,从而在相变存储特性的化学基础与压电材料(PbTiO,BiFeO)的巨大响应的起源之间提供了联系。这对于动力学行为具有重要的后果,特别是导致相对于非晶质同时结晶态的声学模态硬化和高频光学模态的硬化。非晶相和结晶相中这种不同的键合为不同的物理性质提供了直接的解释,并为长期稳定性和快速转换的结合提供了理解,并且对于寻找具有优异性质的新相变成分可能很有用。

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