论文标题

同时观察2H-mote中的载体特异性重新分布和连贯的晶格动力学$ _ {2} $,并带有飞秒核心级光谱

Simultaneous Observation of Carrier-Specific Redistribution and Coherent Lattice Dynamics in 2H-MoTe$_{2}$ with Femtosecond Core-Level Spectroscopy

论文作者

Attar, Andrew R., Chang, Hung-Tzu, Britz, Alexander, Zhang, Xiang, Lin, Ming-Fu, Krishnamoorthy, Aravind, Linker, Thomas, Fritz, David, Neumark, Daniel M., Kalia, Rajiv K., Nakano, Aiichiro, Ajayan, Pulickel, Vashishta, Priya, Bergmann, Uwe, Leone, Stephen R.

论文摘要

我们采用了几秒钟的极端紫外线(XUV)瞬态吸收光谱,以同时揭示纳米级薄膜中的纳米级薄膜中的带内和间载体释放和光诱导的结构动力学。通过通过本地化的TE 4 $ \ textIt {d} $(39-46 eV)和MO 4 $ \ textit {p} $(35-38 eV)核心核心核心水平来审问价电子结构,实时观察到光激发孔分布的放松。我们分别获得15 $ \ pm $ 5 fs和380 $ \ pm $ 90 fs的孔热化和冷却时间,以及1.5 $ \ pm $ 0.1 ps的电子孔重组时间。此外,相干平面外的激发$ _ {1G} $(5.1 thz)和平面内E $ _ {1G} $(3.7 THz)晶格振动通过XUV吸收光谱中的振荡可视化。通过与伯特 - 钙板方程模拟相比,光谱变化映射到沿主要空间沿着主要的a {1g} $坐标的晶格的兴奋状态位移。通过直接并同时探测激发的载体分布动力学以及在单个实验中伴随2H-MOTE $ _ {2} $中的飞秒晶格位移,我们的工作为理解光激发纳米材料中电子和结构动力学之间的相互作用提供了基准。

We employ few-femtosecond extreme ultraviolet (XUV) transient absorption spectroscopy to reveal simultaneously the intra- and interband carrier relaxation and the light-induced structural dynamics in nanoscale thin films of layered 2H-MoTe$_{2}$ semiconductor. By interrogating the valence electronic structure via localized Te 4$\textit{d}$ (39-46 eV) and Mo 4$\textit{p}$ (35-38 eV) core levels, the relaxation of the photoexcited hole distribution is directly observed in real time. We obtain hole thermalization and cooling times of 15$\pm$5 fs and 380$\pm$90 fs, respectively, and an electron-hole recombination time of 1.5$\pm$0.1 ps. Furthermore, excitations of coherent out-of-plane A$_{1g}$ (5.1 THz) and in-plane E$_{1g}$ (3.7 THz) lattice vibrations are visualized through oscillations in the XUV absorption spectra. By comparison to Bethe-Salpeter equation simulations, the spectral changes are mapped to real-space excited-state displacements of the lattice along the dominant A$_{1g}$ coordinate. By directly and simultaneously probing the excited carrier distribution dynamics and accompanying femtosecond lattice displacement in 2H-MoTe$_{2}$ within a single experiment, our work provides a benchmark for understanding the interplay between electronic and structural dynamics in photoexcited nanomaterials.

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