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Exploitation of desilylation chemistry in tailor-made functionalization on diverse surfaces

Authors :
Thomas Wandlowski
Shi-Xia Liu
Veerabhadrarao Kaliginedi
Masoud Baghernejad
Cancan Huang
Yongchun Fu
Silvio Decurtins
Akiyoshi Kuzume
Wenjing Hong
Alexander V. Rudnev
Songjie Chen
Source :
Nature communications, Fu, Yongchun; Chen, Songjie; Kuzume, Akiyoshi; Rudnev, Alexander; Huang, Cancan; Kaliginedi, Veerabhadrarao; Baghernejad, Masoud; Hong, Wenjing; Wandlowski, Thomas; Decurtins, Silvio; Liu, Shi-Xia (2015). Exploitation of desilylation chemistry in tailor-made functionalization on diverse surfaces. Nature communications, 6(6403), p. 6403. Nature Publishing Group 10.1038/ncomms7403 , Nature Communications
Publication Year :
2015

Abstract

Interface engineering to attain a uniform and compact self-assembled monolayer at atomically flat surfaces plays a crucial role in the bottom-up fabrication of organic molecular devices. Here we report a promising and operationally simple approach for modification/functionalization not only at ultraflat single-crystal metal surfaces, M(111) (M=Au, Pt, Pd, Rh and Ir) but also at the highly oriented pyrolytic graphite surface, upon efficient in situ cleavage of trimethylsilyl end groups of the molecules. The obtained self-assembled monolayers are ultrastable within a wide potential window. The carbon–surface bonding on various substrates is confirmed by shell-isolated nanoparticle-enhanced Raman spectroscopy. Application of this strategy in tuning surface wettability is also demonstrated. The most valuable finding is that a combination of the desilylation with the click chemistry represents an efficient method for covalent and tailor-made functionalization of diverse surfaces.<br />Formation of stable and uniform self-assembled monolayers on surfaces is a prerequisite for bottom-up fabrication of many organic molecular devices. Here, the authors present a fabrication approach based on desilylation chemistry for modification and functionalization on various metal and carbon surfaces.

Details

Volume :
6
Database :
OpenAIRE
Journal :
Nature communications
Accession number :
edsair.doi.dedup.....f614bb61310d9f689a1e06e1e0f0f666
Full Text :
https://doi.org/10.1038/ncomms7403