Two-Dimensional Multiphase Behavior Induced by Sterically Hindered Conformational Optimization of Phenoxy-Substituted Phthalocyanines

Symmetrically substituted phthalocyanines (Pcs) with eight peripheral di-(tert-butyl)phenoxy (DTPO) groups self-organize on Ag(111) and Au(111) substrates into various assembly structures. These different structural phases were studied by scanning tunneling microscopy (STM). On the basis of high-res...

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Veröffentlicht in:Journal of physical chemistry. C 2008-04, Vol.112 (15), p.6139-6144
Hauptverfasser: Samuely, Tomas, Liu, Shi-Xia, Wintjes, Nikolai, Haas, Marco, Decurtins, Silvio, Jung, Thomas A, Stöhr, Meike
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container_end_page 6144
container_issue 15
container_start_page 6139
container_title Journal of physical chemistry. C
container_volume 112
creator Samuely, Tomas
Liu, Shi-Xia
Wintjes, Nikolai
Haas, Marco
Decurtins, Silvio
Jung, Thomas A
Stöhr, Meike
description Symmetrically substituted phthalocyanines (Pcs) with eight peripheral di-(tert-butyl)phenoxy (DTPO) groups self-organize on Ag(111) and Au(111) substrates into various assembly structures. These different structural phases were studied by scanning tunneling microscopy (STM). On the basis of high-resolution STM images, molecular models are provided for each phase that account for the observed unequal surface densities. Notably, the specificity of the studied Pc derivative featuring the peripheral phenoxy groups remarkably increases its conformational possibilities. Particularly, the rotational degrees of freedom allow all the DTPO substituents to be arranged above the plane of the Pc core, forming a bowl-like structure, which in turn enables the interaction of the Pc core with the metal substrate. The proximity of the Pc core to the metal substrate together with the steric entanglement between neighboring DTPO substituents causes significant retardation of the thermodynamic optimization of the conformations.
doi_str_mv 10.1021/jp710887g
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title Two-Dimensional Multiphase Behavior Induced by Sterically Hindered Conformational Optimization of Phenoxy-Substituted Phthalocyanines
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