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Watching ultrafast responses of structure and magnetism in condensed matter with momentum-resolved probes

机译:用动量分辨探头观察凝聚态中结构和磁性的超快速响应

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摘要

We present a non-comprehensive review of some representative experimental studies in crystalline condensed matter systems where the effects of intense ultrashort light pulses are probed using x-ray diffraction and photoelectron spectroscopy. On an ultrafast (sub-picosecond) time scale, conventional concepts derived from the assumption of thermodynamic equilibrium must often be modified in order to adequately describe the time-dependent changes in material properties. There are several commonly adopted approaches to this modification, appropriate in different experimental circumstances. One approach is to treat the material as a collection of quasi-thermal subsystems in thermal contact with each other in the so-called “N-temperature” models. On the other extreme, one can also treat the time-dependent changes as fully coherent dynamics of a sometimes complex network of excitations. Here, we present examples of experiments that fall into each of these categories, as well as experiments that partake of both models. We conclude with a discussion of the limitations and future potential of these concepts.
机译:我们目前对晶体冷凝物系统中的一些代表性实验研究进行了非全面的综述,其中使用X射线衍射和光电子能谱探测了强烈的超短光脉冲的影响。在超快速(亚皮秒)时间范围内,必须经常修改源自热力学平衡假设的常规概念,以便充分描述材料特性随时间的变化。有几种通常采用的对此修改方法,适用于不同的实验环境。一种方法是将材料视为在所谓的“ N温度”模型中彼此热接触的准热子系统的集合。另一方面,也可以将与时间相关的变化视为有时复杂的激励网络的完全相干动力学。在这里,我们提供属于这些类别的实验示例,以及属于这两种模型的实验示例。最后,我们讨论了这些概念的局限性和未来潜力。

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