| Literature DB >> 28546887 |
Daniel Waas1, Florian Rückerl1, Martin Knupfer1, Bernd Büchner1.
Abstract
We have used photoelectron spectroscopy to determine the energy-level alignment at organic heterojunctions made of manganese phthalocyanine (MnPc) and the fullerene C60. We show that this energy-level alignment depends upon the preparation sequence, which is explained by different molecular orientations. Moreover, our results demonstrate that MnPc/C60 interfaces are hardly suited for application in organic photovoltaic devices, since the energy difference of the two lowest unoccupied molecular orbitals (LUMOs) is rather small.Entities:
Keywords: C60; manganese phthalocyanine (MnPc); organic interfaces; photoelectron spectroscopy (PES)
Year: 2017 PMID: 28546887 PMCID: PMC5433147 DOI: 10.3762/bjnano.8.94
Source DB: PubMed Journal: Beilstein J Nanotechnol ISSN: 2190-4286 Impact factor: 3.649
Figure 1Evolution of the valence-band PES data (He Iα) as a function of a) MnPc deposition onto C60 and b) C60 deposition onto MnPc. Additionally, the bottom spectrum represents the freshly prepared Au(100) surface. N1s core-level data of MnPc as a function of c) MnPc deposition onto C60 and d) C60 deposition onto MnPc. The corresponding layer thicknesses are indicated.
Figure 2Comparison of the energy shifts of core levels, valence-band features and the secondary-electron cutoff (work function) of a) the C60/MnPc interface and b) the MnPc/C60 interface studied in this work.
Figure 3Schematic energy level diagrams of a) MnPc/C60, when C60 is deposited onto MnPc and b) C60/MnPc, when MnPc is deposited onto C60. All values are given in electronvolts.