Abstract

The efficiency of interfacial charge transfer for photovoltaic and photocatalytic applications of metal-tetraphenylporphyrins (M-TPPs) on rutile TiO2(110) is governed by the molecular adsorption site and configuration. Although nitrogen-chelated metals in oxidation state (II) display a different tendency to axial coordination at the porphyrin centre, we found that M(II)-TPPs with M = Co, Ni, Cu, Zn adsorb on the Obr rows with the same molecular conformation and they aggregate into a commensurate phase with the same symmetry. According to density functional theory (DFT) calculations, the tendency to axial coordination determines the hierarchy of the molecular adsorption energy (where Co-TPP displays the largest one) and the preference for adsorption either atop one Obr atom (Co- and Zn-TPP) or on bridge between two Obr atoms (Ni- and Cu-TPP). In the latter case, the adsorption site is driven by the optimization of the molecular backbone H-bonds to the Obr rows rather than by metal coordination to the substrate.

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