Pižl Martin, Hunter Bryan M, Greetham Gregory M, Towrie Michael, Záliš Stanislav, Gray Harry B, Vlček Antonín
J. Heyrovský Institute of Physical Chemistry, Academy of Sciences of the Czech Republic , Dolejškova 3, CZ-182 23 Prague, Czech Republic.
Department of Inorganic Chemistry, University of Chemistry and Technology, Prague , Technická 5, CZ-166 28 Prague, Czech Republic.
J Phys Chem A. 2017 Dec 7;121(48):9275-9283. doi: 10.1021/acs.jpca.7b10215. Epub 2017 Nov 29.
Binuclear complexes of d metals (Pt, Ir, Rh,) exhibit diverse photonic behavior, including dual emission from relatively long-lived singlet and triplet excited states, as well as photochemical energy, electron, and atom transfer. Time-resolved optical spectroscopic and X-ray studies have revealed the behavior of the dimetallic core, confirming that M-M bonding is strengthened upon dσ* → pσ excitation. We report the bridging ligand dynamics of Ir(1,8-diisocyanomenthane) (Ir(dimen)), investigated by fs-ns time-resolved IR spectroscopy (TRIR) in the region of C≡N stretching vibrations, ν(C≡N), 2000-2300 cm. The ν(C≡N) IR band of the singlet and triplet dσpσ excited states is shifted by -22 and -16 cm relative to the ground state due to delocalization of the pσ LUMO over the bridging ligands. Ultrafast relaxation dynamics of the dσpσ state depend on the initially excited Franck-Condon molecular geometry, whereby the same relaxed singlet excited state is populated by two different pathways depending on the starting point at the excited-state potential energy surface. Exciting the long/eclipsed isomer triggers two-stage structural relaxation: 0.5 ps large-scale Ir-Ir contraction and 5 ps Ir-Ir contraction/intramolecular rotation. Exciting the short/twisted isomer induces a ∼5 ps bond shortening combined with vibrational cooling. Intersystem crossing (70 ps) follows, populating a dσ*pσ state that lives for hundreds of nanoseconds. During the first 2 ps, the ν(C≡N) IR bandwidth oscillates with the frequency of the ν(Ir-Ir) wave packet, ca. 80 cm, indicating that the dephasing time of the high-frequency (16 fs) C≡N stretch responds to much slower (∼400 fs) Ir-Ir coherent oscillations. We conclude that the bonding and dynamics of bridging di-isocyanide ligands are coupled to the dynamics of the metal-metal unit and that the coherent Ir-Ir motion induced by ultrafast excitation drives vibrational dephasing processes over the entire binuclear cation.
d 金属(铂、铱、铑)的双核配合物表现出多样的光子行为,包括来自相对长寿命单重态和三重态激发态的双发射,以及光化学能量、电子和原子转移。时间分辨光谱和 X 射线研究揭示了双金属核的行为,证实了在 dσ* → pσ 激发时 M-M 键得到加强。我们报道了通过飞秒-纳秒时间分辨红外光谱(TRIR)在 C≡N 伸缩振动区域(ν(C≡N),2000 - 2300 cm)对 Ir(1,8 - 二异氰基薄荷烷)(Ir(dimen))桥联配体动力学的研究。由于 pσ 最低未占分子轨道在桥联配体上的离域,单重态和三重态 dσpσ 激发态的 ν(C≡N)红外带相对于基态分别位移了 -22 和 -16 cm。dσpσ 态的超快弛豫动力学取决于初始激发的弗兰克 - 康登分子几何结构,由此根据激发态势能面的起始点,通过两条不同路径填充相同的弛豫单重态激发态。激发长/重叠异构体引发两阶段结构弛豫:0.5 ps 的大规模 Ir-Ir 收缩和 5 ps 的 Ir-Ir 收缩/分子内旋转。激发短/扭曲异构体导致约 5 ps 的键缩短并伴有振动冷却。随后发生系间窜越(70 ps),填充寿命为数百纳秒的 dσ*pσ 态。在最初的 2 ps 内,ν(C≡N)红外带宽随 ν(Ir-Ir)波包频率振荡,约为 80 cm,表明高频(16 fs)C≡N 伸缩的退相时间响应于慢得多(约 400 fs)的 Ir-Ir 相干振荡。我们得出结论,桥联二异氰化物配体的键合和动力学与金属 - 金属单元的动力学相耦合,并且超快激发诱导的相干 Ir-Ir 运动驱动了整个双核阳离子上的振动退相过程。