论文标题

狄拉克半含量pdte2温度依赖性准粒子动力学和电子 - 音波耦合

Dirac semimetal PdTe2 temperature-dependent quasiparticle dynamics and electron-phonon coupling

论文作者

Liu, Shu-Yu, Zhu, Shuang-Xing, Wu, Qi-Yi, Zhang, Chen, Song, Peng-Bo, Shi, You-Guo, Liu, Hao, Liu, Zi-Teng, Song, Jiao-Jiao, Wu, Fan-Ying, Zhao, Yin-Zou, Tang, Xiao-Fang, Yuan, Ya-Hua, Huang, Han, He, Jun, Liu, H. Y., Duan, Yu-Xia, Meng, Jian-Qiao

论文摘要

使用超快光泵探针光谱研究了Dirac半晶PDTE2单晶温度依赖性超快载体和声子动力学。在5 K -300 K范围内鉴定了两个不同的载体和相干的声子松弛过程。定量分析表明,快速放松过程(τ_F)发生在源自电子phonon热化的亚平时尺度上。接下来是一个较慢的松弛过程(τ_s),其时间尺度为〜7-9.5 PS,该时间尺度源自声子辅助电子孔重组。在所有测得的温度下都分解了两个重要的振动模式,并对应于平面内(E_G)和平面外(A_1G)运动。随着温度的增加,两个声子模式都显着变软。随着温度升高,A_1G模式频率单调降低。它的阻尼率几乎保持不变。不出所料,随着温度的上升,E_G均匀降低。在高于80 K的温度下,发生了微不足道的变化。测试结果表明,纯dephasing在松弛过程中起着重要作用。 PDTE2声子被认为是其超导性能的原因。检查声子行为应提高对其复杂超导性的理解。

Dirac semimetal PdTe2 single-crystal temperature-dependent ultrafast carrier and phonon dynamics were studied using ultrafast optical pump-probe spectroscopy. Two distinct carrier and coherent phonons relaxation processes were identified in the 5 K - 300 K range. Quantitative analysis revealed a fast relaxation process (τ_f) occurring on a subpicosecond time scale which originated from electron-phonon thermalization. This was followed by a slower relaxation process (τ_s) with a time scale of ~ 7-9.5 ps which originated from phonon-assisted electron-hole recombination. Two significant vibrational modes resolved at all measured temperatures and corresponded to Te atoms in-plane (E_g), and out-of-plane (A_1g), motion. As temperature increased both phonon modes softened markedly. A_1g mode frequency monotonically decreased as temperature increased. Its damping rate remained virtually unchanged. As expected, E_g decreased uniformly as temperatures rose. At temperatures above 80 K, there was insignificant change. Test results suggested that pure dephasing played an important role in the relaxation processes. PdTe2 phonon is thought responsible for its superconductive properties. Examining phonons behavior should improve the understanding of its complex superconductivity.

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