Institute for Theoretical Chemistry, Ulm University, D-89069 Ulm, Germany.
Phys Chem Chem Phys. 2012 Feb 21;14(7):2353-61. doi: 10.1039/c2cp22740a. Epub 2012 Jan 12.
Experiments have shown that a Pd monolayer deposited electrochemically on a Au-supported self-assembled monolayer (SAM) of 4-mercaptopyridine (Mpy) exhibits a strongly reduced Pd local density of states (LDOS) at the Fermi energy (E(f)). Understanding the origin of this modified electronic structure is crucial for the use of the sandwich design as a platform for future nanoelectronics. Here we suggest that hydrogen adsorption might be the origin of the modified electronic properties. We performed periodic density functional theory calculation to explore the influence of hydrogen adsorption on the geometric and electronic structure of a Pd/Mpy/Au(111) complex. Dissociative adsorption of H(2) on a Pd monolayer on top of a Mpy SAM is a strongly exothermic process leading to atomic hydrogen atoms preferentially located at the hollow sites. Due to the formation of a strong Pd-H bond the Pd-SAM interaction realized via one-fold N-Pd bonds is substantially weakened. Upon hydrogen adsorption, the Pd LDOS becomes significantly modified exhibiting a drastic reduction of the density of states at E(f). The calculated spectra are in a good agreement with the experiment for a hydrogen coverage corresponding to two monolayers which is still thermodynamically allowed.
实验表明,电化学沉积在 Au 支撑的 4-巯基吡啶(Mpy)自组装单层上的 Pd 单层在费米能级(E(f))处表现出强烈降低的 Pd 局域态密度(LDOS)。理解这种电子结构的改性对于将三明治设计用作未来纳米电子学的平台至关重要。在这里,我们建议氢吸附可能是电子性质改性的原因。我们进行了周期性密度泛函理论计算,以探索氢吸附对 Pd/Mpy/Au(111) 复合物的几何和电子结构的影响。H(2)在 Mpy SAM 顶部的 Pd 单层上的离解吸附是一个强烈的放热过程,导致氢原子优先位于空位。由于形成了强 Pd-H 键,通过单键 N-Pd 键实现的 Pd-SAM 相互作用大大减弱。在氢吸附后,Pd LDOS 发生显著改性,在 E(f)处的态密度急剧降低。计算得到的光谱与实验结果吻合良好,实验中氢覆盖率对应于两层,这仍然是热力学允许的。