Ecole Polytechnique Fédérale de Lausanne, Laboratoire de Spectroscopie Ultrarapide , ISIC, FSB, CH-1015 Lausanne, Switzerland.
SwissFEL, Paul Scherrer Inst , CH-5232 Villigen, Switzerland.
Struct Dyn. 2014 Apr 17;1(2):024901. doi: 10.1063/1.4871751. eCollection 2014 Mar.
We present a picosecond Fe K-edge absorption study of photoexcited ferrous and ferric hexacyanide in water under 355 and 266 nm excitation. Following 355 nm excitation, the transient spectra for the ferrous and ferric complexes exhibit a red shift of the edge reflecting an increased electron density at the Fe atom. For the former, an enhanced pre-edge transition is also observed. These observations are attributed to the aquated Fe(CN)5OH2 species, based on quantum chemical calculations which also provide structural parameters. Upon 266 nm excitation of the ferric complex, a transient reminiscent of the aquated species is observed (appearance of a pre-edge feature and red shift of the edge) but it is different from that obtained under 355 nm excitation. This points to a new reaction channel occurring through an intermediate state lying between these two excitation energies. Finally, 266 nm excitation of the ferrous species is dominated by the photooxidation channel with formation of the ferric complex as main photoproduct. However, we observe an additional minor photoproduct, which is identical to the 266 nm generated photoproduct of the ferric species, suggesting that under our experimental conditions, the pump pulse photooxidises the ferrous complex and re-excites the primary ferric photoproduct.
我们展示了皮秒级 Fe K 边吸收研究,研究了 355nm 和 266nm 激发下水中六氰合亚铁和六氰合铁的光激发。355nm 激发后,亚铁和铁配合物的瞬态光谱表现出边缘红移,反映出 Fe 原子的电子密度增加。对于前者,还观察到增强的预边跃迁。这些观察结果归因于水合Fe(CN)5OH2物种,基于量子化学计算还提供了结构参数。在 266nm 激发铁配合物时,观察到类似于水合物种的瞬态(出现预边特征和边缘红移),但与 355nm 激发下的不同。这表明存在一个新的反应通道,通过这两个激发能之间的中间态发生。最后,266nm 激发亚铁物种主要通过光氧化通道进行,形成铁配合物作为主要光产物。然而,我们观察到一个额外的次要光产物,与 266nm 激发的铁配合物的光产物相同,这表明在我们的实验条件下,泵浦脉冲光氧化亚铁配合物并重新激发主要的铁光产物。