论文标题

由光激发载体驱动的可切换固体状态的非热运输

Non-thermal transport of energy driven by photoexcited carriers in switchable solid states of GeTe

论文作者

Gu, R., Perrault, T., Juvé, V., Vaudel, G., Weis, M., Bulou, A., Chigarev, N., Levchuk, A., Raetz, S., Gusev, V. E., Cheng, Z., Bhaskaran, H., Ruello, P.

论文摘要

相变合金从可重写光盘到当今对新兴神经形态计算体系结构的使用的广泛使用。尽管存在这种巨大的商业利益,但这些材料中载体的物理学仍然尚未完全了解。在这里,我们描述了光激发载体与晶格之间的耦合的时间和空间依赖性在一个相变材料Gete的无定形和结晶状态下。我们使用称为picsecond声学方法的时间分辨的光学技术来研究\ textit {int intu {原位}热辅助无定形,以对Gete的结晶相变。我们的工作揭示了相变的电子音波耦合的明显演变,因为在无定形($ a $ gete)和晶体($α$ - gete)相中的光激发声音声子的光谱是不同的。尤其是令人惊讶的是,我们对晶体中的光诱导的声脉冲持续时间的分析表明,在光激发过程中沉积的一部分能量发生在显然超过泵灯皮肤深度所定义的距离上。在相反的情况下,晶格光激发过程仍位于无定形状态的皮肤深度内。然后,我们证明这是由于晶体状态下光激发电子孔等离子体的超音速扩散所致。因此,这些发现证明了非热运输的存在,它比晶格热扩散快得多。

Phase change alloys have seen widespread use from rewritable optical discs to the present day interest in their use in emerging neuromorphic computing architectures. In spite of this enormous commercial interest, the physics of carriers in these materials is still not fully understood. Here, we describe the time and space dependence of the coupling between photoexcited carriers and the lattice in both the amorphous and crystalline states of one phase change material, GeTe. We study this using a time-resolved optical technique called picosecond acoustic method to investigate the \textit{in situ} thermally assisted amorphous to crystalline phase transformation in GeTe. Our work reveals a clear evolution of the electron-phonon coupling during the phase transformation as the spectra of photoexcited acoustic phonons in the amorphous ($a$-GeTe) and crystalline ($α$-GeTe) phases are different. In particular and surprisingly, our analysis of the photoinduced acoustic pulse duration in crystalline GeTe suggests that a part of the energy deposited during the photoexcitation process takes place over a distance that clearly exceeds that defined by the pump light skin depth. In the opposite, the lattice photoexcitation process remains localized within that skin depth in the amorphous state. We then demonstrate that this is due to supersonic diffusion of photoexcited electron-hole plasma in the crystalline state. Consequently these findings prove the existence of a non-thermal transport of energy which is much faster than lattice heat diffusion.

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