Smith Nathanael L, Knappenberger Kenneth L
Department of Chemistry, The Pennsylvania State University, University Park, Pennsylvania 16802, United States.
J Phys Chem A. 2024 Sep 12;128(36):7620-7627. doi: 10.1021/acs.jpca.4c04387. Epub 2024 Aug 28.
The electronic relaxation dynamics of gold monolayer protected clusters (MPCs) are influenced by the hydrocarbon structure of thiolate protecting ligands. Here, we present ligand-dependent electronic relaxation for a series of Au(SR) (SR = SCH, SCH, SCH) MPCs using femtosecond time-resolved transient absorption spectroscopy. Relaxation pathways included a ligand-independent femtosecond internal conversion and a competing ligand-dependent picosecond intersystem crossing process. Intersystem crossing was accelerated for the aliphatic (SCH, SCH) thiolate MPCs compared to the aromatic (SCH) thiolate MPCs. Additionally, a 1.2 THz quadrupolar acoustic mode and a 2.4 THz breathing acoustic mode was identified in each cluster, which indicated that differences in ligand structure did not result in significant structural changes to the metal core of the MPCs. Considering that the difference in relaxation rates did not result from ligand-induced core deformation, the accelerated intersystem crossing was attributed to greater electron-vibrational coupling to Au-S vibrational modes. The results suggested that the organometallic semiring was less rigid for the aliphatic thiolate MPCs due to reduced steric effects, and in turn, increases in nonradiative decay rates were observed. Overall, these results imply that the protecting ligand structure can be used to modify carrier relaxation in MPCs.
金单层保护簇(MPCs)的电子弛豫动力学受硫醇盐保护配体的烃结构影响。在此,我们使用飞秒时间分辨瞬态吸收光谱法展示了一系列Au(SR)(SR = SCH、SCH、SCH)MPCs的配体依赖性电子弛豫。弛豫途径包括一个与配体无关的飞秒内转换和一个与之竞争的配体依赖性皮秒系间窜越过程。与芳香族(SCH)硫醇盐MPCs相比,脂肪族(SCH、SCH)硫醇盐MPCs的系间窜越加速。此外,在每个簇中都识别出了1.2太赫兹的四极声模和2.4太赫兹的呼吸声模,这表明配体结构的差异并未导致MPCs金属核发生显著的结构变化。鉴于弛豫速率的差异并非由配体诱导的核变形所致,加速的系间窜越归因于与Au-S振动模式更强的电子 - 振动耦合。结果表明,由于空间位阻效应减小,脂肪族硫醇盐MPCs的有机金属半环刚性较低,进而观察到非辐射衰减速率增加。总体而言,这些结果意味着保护配体结构可用于调节MPCs中的载流子弛豫。