Diblock copolyelectrolytes have significant potential in applications such as solid-state single-ion conductors, but precisely controlling their nanostructures for efficient ion transport remains a challenge. In this study, we explore the phase behavior and microphase transitions of AX BY-type diblock copolyelectrolytes under alternating electric fields using coarse-grained molecular dynamics simulations. We systematically investigate the effects of various electric field features, including unipolar and bipolar square-waves, as well as offset and non-offset sine-waves, focusing on how field strength and period influence the self-assembling morphology of the copolyelectrolytes. Under unipolar square-waves, both the lamellar and cylindrical phase regions expand, while the disordered phase regions shrink as the field strength increases. In contrast, bipolar square-waves maintain lamellar structures more robustly, with reversed stretching behavior observed in the polymer chains. As the electric field period exceeds a critical value, both waveforms converge with the results seen under constant electric fields. In addition, sine-waves induce smoother phase transitions, expanding the ordered phase regions, particularly the cylindrical phase, due to continuous field variation. We further examine the detailed structural and dynamic properties, such as mean-square displacement, polymer conformation, and chain orientation during these transitions. This work provides fundamental insights into the structural regulation of diblock copolyelectrolytes under oscillating electric fields, guiding the design of advanced polymeric electrolytes with tailored nanostructures.

Download full-text PDF

Source
http://dx.doi.org/10.1063/5.0243907DOI Listing

Publication Analysis

Top Keywords

diblock copolyelectrolytes
16
electric fields
16
phase regions
12
copolyelectrolytes alternating
8
alternating electric
8
fields coarse-grained
8
coarse-grained molecular
8
molecular dynamics
8
electric field
8
bipolar square-waves
8

Similar Publications

Diblock copolyelectrolytes have significant potential in applications such as solid-state single-ion conductors, but precisely controlling their nanostructures for efficient ion transport remains a challenge. In this study, we explore the phase behavior and microphase transitions of AX BY-type diblock copolyelectrolytes under alternating electric fields using coarse-grained molecular dynamics simulations. We systematically investigate the effects of various electric field features, including unipolar and bipolar square-waves, as well as offset and non-offset sine-waves, focusing on how field strength and period influence the self-assembling morphology of the copolyelectrolytes.

View Article and Find Full Text PDF

Complex coacervate core micelles (C3Ms), formed through electrostatic interactions between oppositely charged block copolyelectrolytes, are effective delivery vehicles for hydrophilic biomacromolecules. This study investigates the impact of polymer architecture on the C3Ms structure by blending homopolyelectrolytes and diblock copolyelectrolytes as anionic counterparts for cationic diblock copolyelectrolytes. Our results show that the micellar structure, including core size, aggregation number, and corona characteristics, is precisely controlled by the fraction of homopolyelectrolytes.

View Article and Find Full Text PDF

Mapping the phase behavior of coacervate-driven self-assembly in diblock copolyelectrolytes.

Soft Matter

June 2019

Department of Chemical and Biomolecular Engineering, 600 S. Mathews Ave., Urbana, IL, USA.

Oppositely-charged polymers can undergo an associative phase separation process known as complex coacervation, which is driven by the electrostatic attraction between the two polymer species. This driving force for phase separation can be harnessed to drive self-assembly, via pairs of block copolyelectrolytes with opposite charge and thus favorable coulombic interactions. There are few predictions of coacervate self-assembly phase behavior due to the wide variety of molecular and environmental parameters, along with fundamental theoretical challenges.

View Article and Find Full Text PDF

Targeted control of the aggregation, morphology and optical properties of conjugated polymers is critical for the development of high performance optoelectronic devices. Here, self-assembly approaches are used to strategically manipulate the order, conformation and spatial distribution of conjugated polymers in solution and subsequently prepared thin films. The supramolecular complex organisation of phosphonium-functionalised homo- (P3HTPMe3) and diblock (P3HT-b-P3HTPMe3) ionic conjugated polythiophenes upon solvent-mediation and co-assembly with oppositely charged surfactants is investigated.

View Article and Find Full Text PDF

Polyion complex vesicles (PICsomes) from strong copolyelectrolytes. Stability and in vitro studies.

Colloids Surf B Biointerfaces

October 2017

Faculty of Chemistry, Jagiellonian University, Ingardena 3, 30-060 Kraków, Poland. Electronic address:

Polymer vesicles formed by a pair of oppositely charged diblock copolyelectrolytes (PICsomes) are considered as a good alternative to polymersomes formed by amphiphilic copolymers. Here, we report on inherent stability and in vitro biocompatibility of PICsomes prepared from a pair of oppositely charged zwitterionic-ionic copolymers, in which the ionic block is a strong polyelectrolyte. Our results demonstrated that the PICsomes are highly stable over a wide range of pH and temperatures.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!