3 research outputs found
Physicochemical Insights on AlkylcarbonateāAlkanol Solutions
Macroscopic properties and structuring
at the molecular level of
dialkylcarbonate + 1-alkanol mixed fluids have been studied as a function
of alkyl chain lengths in 1-alkanol and dialkylcarbonate, mixture
composition, and temperature. A combined experimental and computational
approach was considered for studying the relationships between the
nanoscopic structure of the mixed fluids; nature, extension, and organization
of hydrogen bonding; and physicochemical properties. Thermodynamics
characterization, using excess and mixing properties, are related
with the strength and characteristics of intermolecular forces. Classic
molecular dynamics simulations and quantum chemistry calculations
provide a detailed picture of the mixed fluidsā structuring
and dynamic behavior
Characterization of AmideāAlkanediol Intermolecular Interactions
The properties of formamide + 1,2-alkanediol
binary liquid systems
were studied both at the macro- and microscopic levels using a combined
experimental and computational methodology. Physicochemical properties,
infrared spectroscopy, and solvatochromic studies together with classic
molecular dynamics and quantum chemistry calculations allowed the
main characteristics of these binary fluids to be inferred with regard
to the variations of hydrogen bonding with formamide and 1,2-alkanediol
molecular structures, mixture composition, and temperature. The complexity
of these liquid systems arising from the presence of three different
functional groups, which may act as hydrogen bond donors and acceptors,
is analyzed, allowing a detailed picture to be inferred of the studied
systems which is of relevance both for basic liquid state theory and
for industrial purposes
Insights into Glycol EtherāAlkanol Mixtures from a Combined Experimental and Theoretical Approach
The
binary liquid mixtures of glycol ethers (glymes) + 1-alkanol
were characterized from the microscopic and macroscopic viewpoints
through a combined experimental and theoretical study. Structuring,
dynamics, and intermolecular forces were determined using density
functional theory and classical molecular dynamics methods. The macroscopic
behavior was studied though the measurement of relevant physicochemical
properties and Raman IR studies. The changes in intermolecular forces
with mixture composition, temperature, and the effects from the types
of glymes as well as 1-alkanols were considered. Hydrogen bonding
in the mixed fluids, its changes upon mixing, and mixture composition
showed a large effect on fluidsā structure and determined most
of the fluidsā properties together with the presence of hydrophobic
domains from long 1-alkanols