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Fabrication of a complex two-dimensional adenine–perylene-3,4,9,10-tetracarboxylic dianhydride chiral nanoarchitecture through molecular self-assembly

Version 2 2024-03-12, 13:16
Version 1 2024-03-01, 09:05
journal contribution
posted on 2024-03-12, 13:16 authored by Xiaonan Sun, Manuela Mura, Harry T. Jonkman, Lev N. Kantorovich, Fabien Silly
<p>The two-dimensional self-assembly of a nonsyrnmetric adenine DNA base mixed with symmetric perylene-3,4,9,10-tetracarboxylic dianhydride (PTCDA) molecules is investigated using scanning tunneling microscopy (STM). We experimentally observe that these two building blocks form a complex close-packed chiral supramolecular network on Au(111). The unit cell of the adenine PTCDA nanoarchitecture is composed of 14 molecules. The high stability of this structure relies on PTCDA-PTCDA and PTCDA-adenine hydrogen bonding. Detailed theoretical analysis based on the density functional theory (DFT) calculations reveals that adenine molecules work as a glue, providing additional strengthening to the PTCDA-based skeleton of this sophisticated multicomponent nanoarchitecture. At the same time, we find that orientation and chirality of adenine molecules across the monolayer is likely to vary, leading to a disorder in the atomistic structure of the entire assembly.</p>

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School affiliated with

  • School of Mathematics and Physics (Research Outputs)

Publication Title

The Journal of Physical Chemistry C

Volume

116

Issue

3

Pages/Article Number

2493-2499

Publisher

American Chemical Society

ISSN

1932-7447

eISSN

1932-7455

Date Submitted

2015-02-18

Date Accepted

2012-01-01

Date of First Publication

2012-01-01

Date of Final Publication

2012-01-01

Date Document First Uploaded

2015-02-13

ePrints ID

16701

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