Entropy driven chain effects on ligation chemistry
Date
2015
Authors
Pahnke, Kai
Brandt, Josef
Gryn'ova, Ganna
Lindner, Peter
Schweins, Ralf
Schmidt, Friedrich Georg
Lederer, Albena
Coote, Michelle
Barner-Kowollik, Christopher
Journal Title
Journal ISSN
Volume Title
Publisher
Royal Society of Chemistry
Abstract
We report the investigation of fundamental entropic chain effects that enable the tuning of modular ligation
chemistry – for example dynamic Diels–Alder (DA) reactions in materials applications – not only classically
via the chemistry of the applied reaction sites, but also via the physical and steric properties of the molecules
that are being joined. Having a substantial impact on the reaction equilibrium of the reversible ligation
chemistry, these effects are important when transferring reactions from small molecule studies to larger
or other entropically very dissimilar systems. The effects on the DA equilibrium and thus the temperature
dependent degree of debonding (%debond) of different cyclopentadienyl (di-)functional poly(meth-)
acrylate backbones (poly(methyl methacrylate), poly(iso-butyl methacrylate), poly(tert-butyl
methacrylate), poly(iso-butyl acrylate), poly(n-butyl acrylate), poly(tert-butyl acrylate), poly(methyl
acrylate) and poly(isobornyl acrylate)), linked via a difunctional cyanodithioester (CDTE) were examined
via high temperature (HT) NMR spectroscopy as well as temperature dependent (TD) SEC
measurements. A significant impact of not only chain mass and length with a difference in the degree of
debonding of up to 30% for different lengths of macromonomers of the same polymer type but –
remarkably – as well the chain stiffness with a difference in bonding degrees of nearly 20% for isomeric
poly(butyl acrylates) is found. The results were predicted, reproduced and interpreted via quantum
chemical calculations, leading to a better understanding of the underlying entropic principles
Description
Keywords
Acrylics, Debonding, Chains, Esters, Isomers, Molecules, Nuclear magnetic resonance spectroscopy, Quantum chemistry, Butyl methacrylates, Diels-Alder reaction, Poly (tert-butyl acrylate), Poly methyl acrylate, Poly(n-butyl acrylate), Quantum chemical calculations, Reaction equilibrium, Temperature dependent, Chemical bonds
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Chemical Science
Type
Journal article
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Open Access
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