Saint-Petersburg State University , University Embankment 7/9 , St. Petersburg 199034 , Russia.
Department of Chemistry and the Center for Photochemical Sciences , Bowling Green State University , Bowling Green , Ohio 43403 , United States.
J Phys Chem B. 2018 Nov 21;122(46):10558-10571. doi: 10.1021/acs.jpcb.8b06901. Epub 2018 Nov 12.
Ultrafast excited-state dynamics of CuCl in acetonitrile is studied by femtosecond broadband transient absorption spectroscopy following excitation of the complex into all ligand-field (LF or d-d) states and into the two ligand-to-metal charge transfer (LMCT) states corresponding to the most intense steady-state absorption bands. The LF excited states are found to be nonreactive. The lowest-lying E LF excited state has a lifetime less than 150 fs, and the lifetimes of the second (B) and the third (A) LF excited states are 1 and 5 ps, respectively. All three LF states decay directly into the ground B state. Such significant differences in excited-state decay time constants were rationalized computationally through time-dependent density functional theory (TD-DFT) computations. TD-DFT mapping of the relaxation pathway along the symmetric Cl-Cu-Cl umbrella bending vibration gives evidence for a conical intersection between the E excited state and the ground B state. The LMCT states decay within 200 fs with the primary deactivation mode consistent to be Cu-Cl stretch. A fraction of the CuCl complexes excited into the LMCT states undergoes ionic dissociation to form products that survive longer than 1 ns. The remaining fraction undergoes internal conversion, which can be viewed as back electron transfer, populating the lower vibrationally hot LF states. The LF states populated from the LMCT states exhibit the same lifetimes as the Franck-Condon LF states and likewise decay directly into the ground state.
采用飞秒宽带瞬态吸收光谱法研究了乙腈中 CuCl 的超快激发态动力学,激发复合物进入所有配体场(LF 或 d-d)态以及对应于最强烈稳态吸收带的两个配体到金属电荷转移(LMCT)态。发现 LF 激发态是非反应性的。最低的 E LF 激发态的寿命小于 150 fs,第二(B)和第三(A)LF 激发态的寿命分别为 1 和 5 ps。所有三个 LF 态都直接衰减到基态 B 态。通过时间依赖密度泛函理论(TD-DFT)计算对激发态衰减时间常数的显著差异进行了合理化解释。通过沿对称 Cl-Cu-Cl 伞形弯曲振动的弛豫途径进行 TD-DFT 映射,为 E 激发态和基态 B 之间的锥形交叉提供了证据。LMCT 态在 200 fs 内衰减,主要失活模式与 Cu-Cl 伸缩一致。一部分激发到 LMCT 态的 CuCl 配合物经历离子离解,形成寿命超过 1 ns 的产物。其余部分经历内部转换,可视为反向电子转移,填充较低振动热 LF 态。从 LMCT 态填充的 LF 态表现出与 Franck-Condon LF 态相同的寿命,并同样直接衰减到基态。