Bi Hai, Palma Carlos-Andres, Gong Yuxiang, Stallhofer Klara, Nuber Matthias, Jing Chao, Meggendorfer Felix, Wen Shizheng, Yam ChiYung, Kienberger Reinhard, Elbing Mark, Mayor Marcel, Iglev Hristo, Barth Johannes V, Reichert Joachim
Physics Department , Technical University of Munich , James-Franck-Str. 1 , 85748 Garching , Germany.
Institute of Physics , Chinese Academy of Sciences , 100190 Beijing , P. R. China.
J Am Chem Soc. 2020 Feb 19;142(7):3384-3391. doi: 10.1021/jacs.9b07757. Epub 2020 Feb 4.
Vibrational excitations provoked by coupling effects during charge transport through single molecules are intrinsic energy dissipation phenomena, in close analogy to electron-phonon coupling in solids. One fundamental challenge in molecular electronics is the quantitative determination of charge-vibrational (electron-phonon) coupling for single-molecule junctions. The ability to record electron-phonon coupling phenomena at the single-molecule level is a key prerequisite to fully rationalize and optimize charge-transport efficiencies for specific molecular configurations and currents. Here we exemplarily determine the pertaining coupling characteristics for a current-carrying chemically well-defined molecule by synchronous vibrational and current-voltage spectroscopy. These metal-molecule-metal junction insights are complemented by time-resolved infrared spectroscopy to assess the intramolecular vibrational relaxation dynamics. By measuring and analyzing the steady-state vibrational distribution during transient charge transport in a bis-phenylethynyl-anthracene derivative using anti-Stokes Raman scattering, we find ∼0.5 vibrational excitations per elementary charge passing through the metal-molecule-metal junction, by means of a rate model ansatz and quantum-chemical calculations.
在通过单分子进行电荷传输过程中,由耦合效应引发的振动激发是一种内在的能量耗散现象,与固体中的电子 - 声子耦合极为相似。分子电子学中的一个基本挑战是对单分子结的电荷 - 振动(电子 - 声子)耦合进行定量测定。在单分子水平记录电子 - 声子耦合现象的能力是充分合理化和优化特定分子构型及电流的电荷传输效率的关键前提。在此,我们通过同步振动光谱和电流 - 电压光谱示例性地确定了一个载流且化学性质明确的分子的相关耦合特性。这些金属 - 分子 - 金属结的见解通过时间分辨红外光谱得到补充,以评估分子内振动弛豫动力学。通过使用反斯托克斯拉曼散射测量和分析双苯基乙炔基蒽衍生物在瞬态电荷传输过程中的稳态振动分布,借助速率模型假设和量子化学计算,我们发现每一个基本电荷通过金属 - 分子 - 金属结时约有0.5个振动激发。