High-Density Modification of H‑Terminated Si(111) Surfaces Using Short-Chain Alkynes

H–Si­(111)-terminated surfaces were alkenylated via two routes: through a novel one-step gas-phase hydrosilylation reaction with short alkynes (C3 to C6) and for comparison via a two-step chlorination and Grignard alkenylation process. All modified surfaces were characterized by static water contact...

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Veröffentlicht in:Langmuir 2017-12, Vol.33 (51), p.14599-14607
Hauptverfasser: Pujari, Sidharam P, Filippov, Alexei D, Gangarapu, Satesh, Zuilhof, Han
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Sprache:eng
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Zusammenfassung:H–Si­(111)-terminated surfaces were alkenylated via two routes: through a novel one-step gas-phase hydrosilylation reaction with short alkynes (C3 to C6) and for comparison via a two-step chlorination and Grignard alkenylation process. All modified surfaces were characterized by static water contact angles and X-ray photoelectron spectroscopy (XPS). Propenyl- and butenyl-coated Si(111) surfaces display a significantly higher packing density than conventional C10–C18 alkyne-derived monolayers, showing the potential of this approach. In addition, propyne chemisorption proceeds via either of two approaches: the standard hydrosilylation at the terminal carbon (lin) at temperatures above 90 °C and an unprecedented reaction at the second carbon (iso) at temperatures below 90 °C. Molecular modeling revealed that the packing energy of a monolayer bonded at the second carbon is significantly more favorable, which drives iso-attachment, with a dense packing of surface-bound iso-propenyl chains at 40% surface coverage, in line with the experiments at
ISSN:0743-7463
1520-5827
DOI:10.1021/acs.langmuir.7b03683