External electric fields align nanostructured block copolymers by either rotation of grains or nucleation and growth depending on how strongly the chemically distinct block copolymer components are segregated. In close vicinity to the order–disorder transition, theory and simulations suggest a third mechanism: selective disordering. We present a time-resolved small-angle X-ray scattering study that demonstrates how an electric field can indeed selectively disintegrate ill-aligned lamellae in a lyotropic block copolymer solution, while lamellae with interfaces oriented parallel to the applied field prevail. The present study adds an additional mechanism to the experimentally corroborated suite of mechanistic pathways, by which nanostructured...
We report the effect of electric field on the morphological transitions and ordering behavior of pol...
The use of electric fields to control the orientation of copolymer microstructures in a thin film ge...
With the miniaturization of devices, block copolymers (BCPs) are emerging as promising candidates fo...
We investigate the mechanism of microdomain orientation in concentrated block copolymer solutions ex...
We investigate the microdomain orientation kinetics of concentrated block copolymer solutions expose...
We investigate the microscopic mechanisms responsible for microdomain alignment in block copolymer s...
Increasing miniaturization of electronic and data storage devices necessitates methods which enable ...
We investigate the influence of incompatibility and dielectric contrast on the reorientation kinetic...
Block copolymers consisting of incompatible components self-assemble into microphase-separated domai...
We demonstrate that two mechanisms of lamellae reorientation observed experimentally under applied e...
We study the kinetics of alignment and registration of block copolymers in an inhomogeneous electric...
The structural versatility of block copolymers on the nanometer scale make them highly promising can...
It is demonstrated that the orientation of striped patterns can be reversibly switched between two p...
We investigate the kinetics of block copolymer/nanoparticle composite alignment in an electric field...
By anchoring random copolymers to the substrates, the interfacial interactions were tuned precisely ...
We report the effect of electric field on the morphological transitions and ordering behavior of pol...
The use of electric fields to control the orientation of copolymer microstructures in a thin film ge...
With the miniaturization of devices, block copolymers (BCPs) are emerging as promising candidates fo...
We investigate the mechanism of microdomain orientation in concentrated block copolymer solutions ex...
We investigate the microdomain orientation kinetics of concentrated block copolymer solutions expose...
We investigate the microscopic mechanisms responsible for microdomain alignment in block copolymer s...
Increasing miniaturization of electronic and data storage devices necessitates methods which enable ...
We investigate the influence of incompatibility and dielectric contrast on the reorientation kinetic...
Block copolymers consisting of incompatible components self-assemble into microphase-separated domai...
We demonstrate that two mechanisms of lamellae reorientation observed experimentally under applied e...
We study the kinetics of alignment and registration of block copolymers in an inhomogeneous electric...
The structural versatility of block copolymers on the nanometer scale make them highly promising can...
It is demonstrated that the orientation of striped patterns can be reversibly switched between two p...
We investigate the kinetics of block copolymer/nanoparticle composite alignment in an electric field...
By anchoring random copolymers to the substrates, the interfacial interactions were tuned precisely ...
We report the effect of electric field on the morphological transitions and ordering behavior of pol...
The use of electric fields to control the orientation of copolymer microstructures in a thin film ge...
With the miniaturization of devices, block copolymers (BCPs) are emerging as promising candidates fo...