激发态
化学物理
飞秒
光谱学
超快激光光谱学
自旋(空气动力学)
自旋态
化学
激发
物理
旋转交叉
原子物理学
激光器
光学
量子力学
结晶学
热力学
作者
Wenkai Zhang,Roberto Alonso‐Mori,Uwe Bergmann,Christian Bressler,Matthieu Chollet,Andreas Galler,Wojciech Gawełda,Ryan G. Hadt,Robert W. Hartsock,Thomas Kröll,Kasper S. Kjær,Katharina Kubiček,H. Lemke,Huiyang W. Liang,D. Meyer,M. Nielsen,Carola M. Purser,Joseph S. Robinson,Edward I. Solomon,Zheng Sun
出处
期刊:Nature
[Nature Portfolio]
日期:2014-05-01
卷期号:509 (7500): 345-348
被引量:432
摘要
Crucial to many light-driven processes in transition metal complexes is the absorption and dissipation of energy by 3d electrons. But a detailed understanding of such non-equilibrium excited-state dynamics and their interplay with structural changes is challenging: a multitude of excited states and possible transitions result in phenomena too complex to unravel when faced with the indirect sensitivity of optical spectroscopy to spin dynamics and the flux limitations of ultrafast X-ray sources. Such a situation exists for archetypal polypyridyl iron complexes, such as [Fe(2,2'-bipyridine)3](2+), where the excited-state charge and spin dynamics involved in the transition from a low- to a high-spin state (spin crossover) have long been a source of interest and controversy. Here we demonstrate that femtosecond resolution X-ray fluorescence spectroscopy, with its sensitivity to spin state, can elucidate the spin crossover dynamics of [Fe(2,2'-bipyridine)3](2+) on photoinduced metal-to-ligand charge transfer excitation. We are able to track the charge and spin dynamics, and establish the critical role of intermediate spin states in the crossover mechanism. We anticipate that these capabilities will make our method a valuable tool for mapping in unprecedented detail the fundamental electronic excited-state dynamics that underpin many useful light-triggered molecular phenomena involving 3d transition metal complexes.
科研通智能强力驱动
Strongly Powered by AbleSci AI