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A tunable time-resolved spontaneous Raman spectroscopy setup for probing ultrafast collective excitation and quasiparticle dynamics in quantum materials

机译:可调谐的时间分辨自发拉曼光谱仪,用于探测量子材料中的超快集体激发和准粒子动力学

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We present a flexible and efficient ultrafast time-resolved spontaneous Raman spectroscopy setup to study collective excitation and quasi-particle dynamics in quantum materials. The setup has a broad energy tuning range extending from the visible to near infrared spectral regions for both the pump excitation and Raman probe pulses. Additionally, the balance between energy and time-resolution can be controlled. A high light collecting efficiency is realized by high numerical aperture collection optics and a high-throughput flexible spectrometer. We demonstrate the functionality of the setup with a study of the zone-center longitudinal optical phonon and hole continuum dynamics in silicon and discuss the role of the Raman tensor in time-resolved Raman scattering. In addition, we show an evidence for unequal phonon softening rates at different high symmetry points in the Brillouin zone of silicon by means of detecting pump-induced changes in the two-phonon overtone spectrum. Demagnetization dynamics in the helimagnet Cu2OSeO3 is studied by observing softening and broadening of a magnon after photo-excitation, underlining the unique power of measuring transient dynamics in the frequency domain, and the feasibility to study phase transitions in quantum materials.
机译:我们提出一种灵活高效的超快速时间分辨自发拉曼光谱仪,以研究量子材料中的集体激发和准粒子动力学。对于泵浦激励和拉曼探测脉冲,该设置具有宽泛的能量调整范围,从可见光谱范围扩展到近红外光谱范围。另外,可以控制能量和时间分辨率之间的平衡。高数值孔径收集光学器件和高通量柔性光谱仪可实现高集光效率。我们通过研究硅中的区域中心纵向光学声子和空穴连续介质动力学来演示该装置的功能,并讨论拉曼张量在时间分辨拉曼散射中的作用。此外,我们通过检测泵激引起的两声子泛音谱中的变化,证明了在硅的布里渊区中不同的高对称点处,声子软化速率不相等的证据。通过观察光激发后磁振子的软化和展宽,研究了直升机磁场Cu 2 OSeO 3 中的退磁动力学,强调了在频域中测量瞬态动力学的独特能力,以及研究量子材料中相变的可行性。

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