Thin films of molecular gels formed in a confined space have potential applications in transdermal delivery, artificial skin, molecular electronics, etc. The microstructures and properties of thin gel films can be significantly different from those of their bulk counterparts. However, so far a comprehensive understanding of the effects of spatial confinement on the molecular gelation kinetics, fiber network structure and related mechanical properties is still lacking. In this work, using rheological techniques, we investigated the effect of one-dimensional confinement on the formation kinetics of fiber networks in the molecular gelation process. Fractal analyses of the kinetic information in terms of an extended Dickinson model enabled us t...
Properties such as shear modulus, gelation time, structure of supramolecular hydrogels are strongly ...
The formation of gels through the bundling of semi-flexible polymer chains into fiber networks is ub...
Coassembly of molecules can produce materials with improved properties and functionalities. To this ...
Low-molecular mass organic gelators self-organizing into three-dimensional fiber networks within org...
Low-molecular mass organic gelators self-organizing into three-dimensional fiber networks within org...
The use of self-assembled gel in biomaterials and drug delivery is an important new area of research...
Fibers growing, branching, and bundling are essential for the development of crystalline fiber netwo...
The rheological properties of supramolecular soft functional materials are determined by the network...
A new approach of engineering of molecular gels was established on the basis of a nucleation-initiat...
The structure and gelation kinetics of mixed linkage barley β-glucans of varying Mw have been invest...
The properties of a hydrogel are controlled by the underlying network that immobilizes the solvent. ...
Pathway complexity results in unique materials from the same components according to the assembly co...
Molecular gels are associated with the formation of strongly anisotropic structures at low volume fr...
Molecular gels and fibrillar networks – a comprehensive guide to experiment and theory Molecular Gel...
This article gives an overview of the current progress of a class of supramolecular soft materials c...
Properties such as shear modulus, gelation time, structure of supramolecular hydrogels are strongly ...
The formation of gels through the bundling of semi-flexible polymer chains into fiber networks is ub...
Coassembly of molecules can produce materials with improved properties and functionalities. To this ...
Low-molecular mass organic gelators self-organizing into three-dimensional fiber networks within org...
Low-molecular mass organic gelators self-organizing into three-dimensional fiber networks within org...
The use of self-assembled gel in biomaterials and drug delivery is an important new area of research...
Fibers growing, branching, and bundling are essential for the development of crystalline fiber netwo...
The rheological properties of supramolecular soft functional materials are determined by the network...
A new approach of engineering of molecular gels was established on the basis of a nucleation-initiat...
The structure and gelation kinetics of mixed linkage barley β-glucans of varying Mw have been invest...
The properties of a hydrogel are controlled by the underlying network that immobilizes the solvent. ...
Pathway complexity results in unique materials from the same components according to the assembly co...
Molecular gels are associated with the formation of strongly anisotropic structures at low volume fr...
Molecular gels and fibrillar networks – a comprehensive guide to experiment and theory Molecular Gel...
This article gives an overview of the current progress of a class of supramolecular soft materials c...
Properties such as shear modulus, gelation time, structure of supramolecular hydrogels are strongly ...
The formation of gels through the bundling of semi-flexible polymer chains into fiber networks is ub...
Coassembly of molecules can produce materials with improved properties and functionalities. To this ...