Institute of Theoretical Chemistry, Ulm University, D-89069 Ulm, Germany.
Beilstein J Nanotechnol. 2011;2:384-93. doi: 10.3762/bjnano.2.44. Epub 2011 Jul 12.
The geometric and electronic structure of the metal-molecule interface in metal/molecule/metal junctions is of great interest since it affects the functionality of such units in possible nanoelectronic devices. We have investigated the interaction between water and a palladium monolayer of a Au(111)/4-mercaptopyridine/Pd junction by means of DFT calculations. A relatively strong bond between water and the palladium monolayer of the Au/Mpy/Pd complex is observed via a one-fold bond between the oxygen atom of the water molecule and a Pd atom. An isolated H(2)O molecule adsorbs preferentially in a flat-lying geometry on top of a palladium atom that is at the same time also bound to the nitrogen atom of a Mpy molecule of the underlying self-assembled monolayer. The electronic structure of these Pd atoms is considerably modified which is reflected in a reduced local density of states at the Fermi energy. At higher coverages, water can be arranged in a hexagonal ice-like bilayer structure in analogy to water on bulk metal surfaces, but with a much stronger binding which is dominated by O-Pd bonds.
金属/分子/金属结中金属-分子界面的几何和电子结构非常重要,因为它影响这些单元在可能的纳米电子设备中的功能。我们通过 DFT 计算研究了 Au(111)/4-巯基吡啶/Pd 结中水分子与钯单层之间的相互作用。通过水分子的氧原子与钯原子之间的一价键,观察到水分子与 Au/Mpy/Pd 配合物的钯单层之间存在相对较强的键。孤立的 H(2)O 分子优先以平躺的几何形状吸附在同时与底层自组装单层中 Mpy 分子的氮原子结合的钯原子上。这些钯原子的电子结构发生了相当大的变化,这反映在费米能级处的局域态密度减小。在更高的覆盖率下,水可以排列成类似于体金属表面上水的六方冰状双层结构,但结合强度要强得多,主要由 O-Pd 键主导。