Title of article
Selective surface chemistry of allyl alcohol and allyl aldehyde on Si(1 0 0)2×1: Competition of [2 + 2] CC cycloaddition with O–H dissociation and with [2 + 2] CO cycloaddition in bifunctional molecules
Author/Authors
Ebrahimi، نويسنده , , Maryam and Leung، نويسنده , , K.T.، نويسنده ,
Issue Information
هفته نامه با شماره پیاپی سال 2009
Pages
9
From page
1203
To page
1211
Abstract
Competition between the CC functional group with the OH group in allyl alcohol and with the CO group in allyl aldehyde in the adsorption and thermal chemistry on Si(1 0 0)2×1 has been studied by X-ray photoelectron spectroscopy (XPS) and temperature-programmed desorption (TPD), as well as density-functional theory (DFT) calculations. The similarities found in the C 1s and O 1s spectra for both molecules indicate that the O–H dissociation product for allyl alcohol and [2 + 2] CO cycloaddition product for allyl aldehyde are preferred over the corresponding [2 + 2] CC cycloaddition products. Temperature-dependent XPS and TPD studies further show that thermal evolution of these molecules gives rise to the formation of ethylene, acetylene, and propene on Si(1 0 0)2×1, with additional CO evolution only from allyl alcohol. The formation of these desorption products also supports that the [2 + 2] CC cycloaddition reaction does not occur. In addition, the formation of SiC at 1090 K is observed for both allyl alcohol and allyl aldehyde. We propose plausible surface-mediated reaction pathways for the formation of these thermal evolution products. The present work illustrates the crucial role of the Si(1 0 0)2×1 surface in selective reactions of the Si dimers with the O−H group in allyl alcohol and with the CO group in allyl aldehyde over the CC functional group common to both molecules.
Keywords
Allyl alcohol , Selectivity , Allyl aldehyde , 0 , 2] cycloaddition , & , Bifunctional molecules Si(1 , + , O?H dissociation , Organic functionalization , 0)
Journal title
Surface Science
Serial Year
2009
Journal title
Surface Science
Record number
1704609
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