Mukhopadhyay Saikat, Sun Jifeng, Subedi Alaska, Siegrist Theo, Singh David J
Materials Science and Technology Division, Oak Ridge National Laboratory, Oak Ridge, TN 37831-6056 USA.
Department of Chemical and Biomedical Engineering, FAMU-FSU College of Engineering, Tallahassee, FL 32310, USA.
Sci Rep. 2016 May 19;6:25981. doi: 10.1038/srep25981.
Ge2Sb2Te5 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 (PbTiO3, BiFeO3). 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.
Ge2Sb2Te5及相关相变材料非常特别,因为它们可以通过非常快速的熔化、淬火、退火循环轻易地在非晶态和晶态之间转变,尽管所得状态在室温下寿命极长。这些状态具有显著不同的物理性质,包括在可见光范围内非常不同的光学常数,这与诸如硅酸盐或磷酸盐等常见玻璃形成体形成强烈对比。这种行为已根据共振键合进行了描述,但仍存在一些谜题,特别是关于晶相和非晶相的不同物理性质。在这里,我们表明立方相中离子键和共价键之间存在强烈竞争,这为相变记忆特性的化学基础与压电材料(PbTiO3、BiFeO3)的巨大响应起源之间提供了联系。这对动力学行为具有重要影响,特别是导致晶相相对于非晶相的声学模式同时硬化和高频光学模式软化。非晶相和晶相中的这种不同键合直接解释了不同的物理性质,并有助于理解长时间稳定性和快速切换的结合,可能有助于找到具有优异性能的新相变组合物。