001     849924
005     20240619083547.0
024 7 _ |a 2128/20995
|2 Handle
037 _ _ |a FZJ-2018-04020
041 _ _ |a English
100 1 _ |a Wiegand, Simone
|0 P:(DE-Juel1)131034
|b 0
|e Corresponding author
|u fzj
111 2 _ |a Twentieth Symposium on Thermophysical Properties
|c Boulder
|d 2018-06-24 - 2018-06-29
|w USA
245 _ _ |a How does the hydration layer influence the thermodiffusion of aqueous systems?
260 _ _ |c 2018
336 7 _ |a Conference Paper
|0 33
|2 EndNote
336 7 _ |a Other
|2 DataCite
336 7 _ |a INPROCEEDINGS
|2 BibTeX
336 7 _ |a conferenceObject
|2 DRIVER
336 7 _ |a LECTURE_SPEECH
|2 ORCID
336 7 _ |a Conference Presentation
|b conf
|m conf
|0 PUB:(DE-HGF)6
|s 1545289867_26509
|2 PUB:(DE-HGF)
|x Invited
520 _ _ |a Thermodiffusion, also called the Ludwig-Soret effect, has gained popularity in recent years as an analytical approach (Microscale Thermophoresis (MST)) to monitor binding reactions in biological molecules that are relevant in pharmaceutical applications. The success of this technique relies on the superb sensitivity of thermodiffusion to changes in the hydration layer around a solute. While for non-polar systems the « heat of transfer » concept has been successfully applied, the mechanism in aqueous systems is more complicated due to charge effects and strong specific cross interactions. On the other hand a detailed understanding of aqueous systems would be valuable due to important applications in biotechnology. To get a better comprehension of the underlying processes we systematically investigated various small molecules and charged colloids by a holographic grating method called infrared Thermal Diffusion Forced Rayleigh Scattering (IR-TDFRS). We elucidate the often found typical temperature dependence of the Soret coefficient of solute molecules in water. From a literature survey and measurements of hydrogen bond formers like amides in water we claim that this simple empirical approach to describe the temperature dependence breaks down at higher solute concentrations, when interactions between different solute molecules start to play a role. Additionally the concept also requires a hydrogen bond network without micro-heterogeneities or cage structures. Performing temperature and concentration dependent measurements, we observe a clear correlation of the temperature and concentration dependence of the Soret coefficient with the hydrophilicity, which can be quantitatively described by the logarithm of the 1-octanol/water partition coefficient P, which is a measure for the hydrophilicity/hydrophobicity balance of a solute. This coefficient is often used to model the transport of a compound in the environment or to screen for potential pharmaceutical compounds. The clear correlation between log P and the temperature sensitivity of the Soret coefficient open a route for a more sophisticated hydrophilicity scale.
536 _ _ |a 551 - Functional Macromolecules and Complexes (POF3-551)
|0 G:(DE-HGF)POF3-551
|c POF3-551
|f POF III
|x 0
856 4 _ |u https://juser.fz-juelich.de/record/849924/files/Wiegand-How%20does%20the%20hydration%20layer.pdf
|y OpenAccess
909 C O |o oai:juser.fz-juelich.de:849924
|p openaire
|p open_access
|p VDB
|p driver
910 1 _ |a Forschungszentrum Jülich
|0 I:(DE-588b)5008462-8
|k FZJ
|b 0
|6 P:(DE-Juel1)131034
913 1 _ |a DE-HGF
|b Key Technologies
|l BioSoft – Fundamentals for future Technologies in the fields of Soft Matter and Life Sciences
|1 G:(DE-HGF)POF3-550
|0 G:(DE-HGF)POF3-551
|2 G:(DE-HGF)POF3-500
|v Functional Macromolecules and Complexes
|x 0
|4 G:(DE-HGF)POF
|3 G:(DE-HGF)POF3
914 1 _ |y 2018
915 _ _ |a OpenAccess
|0 StatID:(DE-HGF)0510
|2 StatID
920 _ _ |l yes
920 1 _ |0 I:(DE-Juel1)ICS-3-20110106
|k ICS-3
|l Weiche Materie
|x 0
980 1 _ |a FullTexts
980 _ _ |a conf
980 _ _ |a VDB
980 _ _ |a UNRESTRICTED
980 _ _ |a I:(DE-Juel1)ICS-3-20110106


LibraryCollectionCLSMajorCLSMinorLanguageAuthor
Marc 21