1 Condensed Matter Physics and Materials Science Department , Brookhaven National Laboratory , Upton , NY 11973 , USA.
2 Materials Science Division , Argonne National Laboratory , Argonne , IL 60439 , USA.
Philos Trans A Math Phys Eng Sci. 2019 May 20;377(2145):20170480. doi: 10.1098/rsta.2017.0480.
Many remarkable properties of quantum materials emerge from states with intricate coupling between the charge, spin and orbital degrees of freedom. Ultrafast photo-excitation of these materials holds great promise for understanding and controlling the properties of these states. Here, we introduce time-resolved resonant inelastic X-ray scattering (tr-RIXS) as a means of measuring the charge, spin and orbital excitations out of equilibrium. These excitations encode the correlations and interactions that determine the detailed properties of the states generated. After outlining the basic principles and instrumentations of tr-RIXS, we review our first observations of transient antiferromagnetic correlations in quasi two dimensions in a photo-excited Mott insulator and present possible future routes of this fast-developing technique. The increasing number of X-ray free electron laser facilities not only enables tackling long-standing fundamental scientific problems, but also promises to unleash novel inelastic X-ray scattering spectroscopies. This article is part of the theme issue 'Measurement of ultrafast electronic and structural dynamics with X-rays'.
许多量子材料的显著特性都源于电荷、自旋和轨道自由度之间复杂耦合的状态。这些材料的超快光激发有望用于理解和控制这些状态的性质。在这里,我们介绍了时间分辨共振非弹性 X 射线散射(tr-RIXS)作为测量非平衡电荷、自旋和轨道激发的一种手段。这些激发编码了决定所产生状态的详细性质的相关性和相互作用。在概述了 tr-RIXS 的基本原理和仪器之后,我们回顾了我们在光激发莫特绝缘体中准二维瞬态反铁磁相关性的首次观察结果,并提出了该快速发展技术的可能未来途径。越来越多的自由电子激光设施不仅使解决长期存在的基础科学问题成为可能,而且有望释放出新型的非弹性 X 射线散射光谱学。本文是“用 X 射线测量超快电子和结构动力学”主题问题的一部分。