Title of article
Rational design of monolayers for improved water evaporation mitigation
Author/Authors
Prime، نويسنده , , Emma L. and Tran، نويسنده , , Diana N.H. and Plazzer، نويسنده , , Michael and Sunartio، نويسنده , , Devi and Leung، نويسنده , , Andy H.M. and Yiapanis، نويسنده , , George and Baoukina، نويسنده , , Svetlana and Yarovsky، نويسنده , , Irene and Qiao، نويسنده , , Greg G. and Solomon، نويسنده , , David H.، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2012
Pages
12
From page
47
To page
58
Abstract
Seven chemically designed monolayer compounds were synthesized and investigated with comparison to the properties and water evaporation suppression ability of 1-hexadecanol and 1-octadecanol. Increasing the molecular weight and polarity of the compound headgroup drastically altered the characteristics and performance of the monolayer at the air/water interface. Contrary to the common expectation the monolayerʹs lifetime on the water surface decreased with increasing number of ethylene oxy moieties, thus optimal performance for water evaporation suppression was achieved when only one ethylene oxy moiety was used. Replacing the hydroxyl headgroup with a methyl group and with multiple ethylene oxy moieties resulted in a loss of suppression capability, while an additional hydroxyl group provided a molecule with limited performance against water evaporation. Theoretical molecular simulation demonstrated that for exceptional performance, a candidate needs to possess a high equilibrium spreading pressure, the ability to sustain a highly ordered monolayer with a stable isotherm curve, and low tilt angle over the full studied range of surface pressures by simultaneously maintaining H-bonding to the water surface and between the monolayer chains.
Keywords
1-Octadecanol , Ethylene glycol monooctadecyl ether , Wind resistance , Monolayer , Water evaporation , Molecular dynamics simulation
Journal title
Colloids and Surfaces A Physicochemical and Engineering Aspects
Serial Year
2012
Journal title
Colloids and Surfaces A Physicochemical and Engineering Aspects
Record number
1943318
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