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Femtosecond structural transformation of phase-change materials far from equilibrium monitored by coherent phonons

机译:飞秒结构相变材料的飞秒结构转变,远离相干声子监测的平衡状态

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摘要

Multicomponent chalcogenides, such as quasi-binary GeTe-Sb2Te3 alloys, are widely used in optical data storage media in the form of rewritable optical discs. Ge2Sb2Te5 (GST) in particular has proven to be one of the best-performing materials, whose reliability allows more than 106 write-erase cycles. Despite these industrial applications, the fundamental kinetics of rapid phase change in GST remain controversial, and active debate continues over the ultimate speed limit. Here we explore ultrafast structural transformation in a photoexcited GST superlattice, where GeTe and Sb2Te3 are spatially separated, using coherent phonon spectroscopy with pump-pump-probe sequences. By analysing the coherent phonon spectra in different time regions, complex structural dynamics upon excitation are observed in the GST superlattice (but not in GST alloys), which can be described as the mixing of Ge sites from two different coordination environments. Our results suggest the possible applicability of GST superlattices for ultrafast switching devices.
机译:多组分硫属化物,例如准二元GeTe-Sb2Te3合金,以可重写光盘的形式广泛用于光学数据存储介质中。事实证明,Ge2Sb2Te5(GST)是性能最好的材料之一,其可靠性可实现106个以上的写擦除循环。尽管有这些工业应用,GST中快速相变的基本动力学仍存在争议,并且在极限速度极限上仍在进行积极的辩论。在这里,我们使用具有泵浦-泵浦-探针序列的相干声子光谱技术,探索了光激发GST超晶格中的超快结构转变,其中GeTe和Sb2Te3在空间上分开。通过分析不同时间区域内的相干声子谱,可以在GST超晶格中观察到复杂的激发动力学结构(但在GST合金中却没有),这可以描述为两种不同配位环境中Ge位置的混合。我们的结果表明,GST超晶格可用于超快开关设备。

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