Electric field alignment of asymmetric diblock copolymer thin films
Version 2 2024-03-12, 12:52Version 2 2024-03-12, 12:52
Version 1 2024-03-01, 08:52Version 1 2024-03-01, 08:52
journal contribution
posted on 2024-03-12, 12:52 authored by T. Xu, Andrei ZvelindovskyAndrei Zvelindovsky, G. J. A. Sevink, K. S. Lyakhova, H. Jinnai, T. P. Russell<p>The electric field alignment of cylindrical microdomains in diblock copolymer thin films was studied using small-angle neutron scattering and transmission electron microscopy. The alignment process was followed with the block copolymer films in different initial states. Starting from a poorly ordered state, the cylindrical microdomain orientation was biased by the surface field that initially drove the cylindrical microdomains to be oriented parallel to the film surface. With further annealing, the cylinders were disrupted locally and formed ellipsoid-shaped microdomains that, with time, connected into cylindrical microdomains oriented in the field direction. Starting from an ordered state with cylinders parallel to the surface, the applied electric field enhanced fluctuations at the interfaces of the microdomains. The growth of the fluctuations continued until the cylindrical microdomains broke up into spherical microdomains, similar to that seen in the thermoreversible cylinder-to-sphere order-order transition. With time, the spherical microdomains deformed into ellipsoidal domains that reconnected into cylindrical microdomains oriented at �45° with respect to the applied field direction. Further annealing aligned the tilted cylinders along the applied field direction. This reorientation process was much slower than from the poorly ordered state. The details of the realignment process are supported by computer simulations based on dynamic self-consistent-field theory. © 2005 American Chemical Society.</p>
History
School affiliated with
- School of Mathematics and Physics (Research Outputs)
Publication Title
MacromoleculesVolume
38Issue
26Pages/Article Number
10788-10798Publisher
American Chemical SocietyExternal DOI
ISSN
0024-9297eISSN
1520-5835Date Submitted
2014-09-23Date Accepted
2005-01-01Date of First Publication
2005-01-01Date of Final Publication
2005-01-01Date Document First Uploaded
2014-09-23ePrints ID
14979Usage metrics
Categories
Keywords
Licence
Exports
RefWorksRefWorks
BibTeXBibTeX
Ref. managerRef. manager
EndnoteEndnote
DataCiteDataCite
NLMNLM
DCDC


