Schmitt F, Kirchmann P S, Bovensiepen U, Moore R G, Rettig L, Krenz M, Chu J-H, Ru N, Perfetti L, Lu D H, Wolf M, Fisher I R, Shen Z-X
Department of Applied Physics, Via Pueblo Mall, Stanford University, Stanford, CA 94305, USA.
Science. 2008 Sep 19;321(5896):1649-52. doi: 10.1126/science.1160778. Epub 2008 Aug 14.
Obtaining insight into microscopic cooperative effects is a fascinating topic in condensed matter research because, through self-coordination and collectivity, they can lead to instabilities with macroscopic impacts like phase transitions. We used femtosecond time- and angle-resolved photoelectron spectroscopy (trARPES) to optically pump and probe TbTe3, an excellent model system with which to study these effects. We drove a transient charge density wave melting, excited collective vibrations in TbTe3, and observed them through their time-, frequency-, and momentum-dependent influence on the electronic structure. We were able to identify the role of the observed collective vibration in the transition and to document the transition in real time. The information that we demonstrate as being accessible with trARPES will greatly enhance the understanding of all materials exhibiting collective phenomena.
深入了解微观协同效应是凝聚态物质研究中一个引人入胜的课题,因为通过自协调和集体性,它们会导致诸如相变等具有宏观影响的不稳定性。我们使用飞秒时间和角分辨光电子能谱(trARPES)对TbTe3进行光泵浦和探测,TbTe3是研究这些效应的理想模型体系。我们驱动了瞬态电荷密度波熔化,激发了TbTe3中的集体振动,并通过它们对电子结构的时间、频率和动量依赖性影响来观察这些振动。我们能够确定所观察到的集体振动在转变中的作用,并实时记录该转变。我们证明trARPES能够获取的信息将极大地增进对所有表现出集体现象的材料的理解。