论文标题

超快电子定位在相关金属中

Ultrafast electron localization in a correlated metal

论文作者

Mardegan, Jose R. L., Zerdane, Serhane, Mancini, Giulia, Esposito, Vincent, Rouxel, Jeremy, Mankowsky, Roman, Svetina, Cristian, Gurung, Namrata, Parchenko, Sergii, Porer, Michael, Burganov, Bulat, Deng, Yunpei, Beaud, Paul, Ingold, Gerhard, Pedrini, Bill, Arrell, Christopher, Erny, Christian, Dax, Andreas, Lemke, Henrik, Decker, Martin, Ortiz, Nazaret, Milne, Chris, Smolentsev, Grigory, Maurel, Laura, Johnson, Steven L., Mitsuda, Akihiro, Wada, Hirofumi, Yokoyama, Yuichi, Wadati, Hiroki, Staub, Urs

论文摘要

FS激光脉冲诱导的超快电子定位是一个众所周知的过程,是重要应用的初步步骤,例如分子的碎片或固体中的激光消融。众所周知,强烈的FS激光脉冲可以在其脉冲持续时间内从原子中去除几个电子。 [1]然而,从电子气体中的电子定位速度(通过离子捕获电子)尚不清楚。在这里,我们证明了从传导带中的电子定位只能发生在几百个飞秒内。该超快电子定位到4F状态已通过瞬态X射线吸收光谱直接量化了与FS激光脉冲的基于欧盟的相关金属后的瞬态X射线吸收光谱。我们的X射线实验表明,该过程的驱动力是超快减少4F状态的能量,其带宽的变化或4F和3D状态之间的杂交增加。观察到的超快电子定位过程为我们了解电子相关性及其与晶格的耦合提出了进一步的基本问题。

Ultrafast electron delocalization induced by a fs laser pulse is a well-known process and is the initial step for important applications such as fragmentation of molecules or laser ablation in solids. It is well understood that an intense fs laser pulse can remove several electrons from an atom within its pulse duration. [1] However, the speed of electron localization out of an electron gas, the capture of an electron by ion, is unknown. Here, we demonstrate that electronic localization out of the conduction band can occur within only a few hundred femtoseconds. This ultrafast electron localization into 4f states has been directly quantified by transient x-ray absorption spectroscopy following photo-excitation of a Eu based correlated metal with a fs laser pulse. Our x-ray experiments show that the driving force for this process is either an ultrafast reduction of the energy of the 4f states, a change of their bandwidth or an increase of the hybridization between the 4f and the 3d states. The observed ultrafast electron localization process raises further basic questions for our understanding of electron correlations and their coupling to the lattice.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源