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Dynamic Electrostatic Interfacial Engineering for Block Copolymer Microparticles with Reversible Structures

delete2024-05-17
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PRE
AI
张梦梦 cover
张梦梦 (Mengmeng Zhang)
程泉勇 (Quanyong Cheng)
韩国强 (Guoqiang Han)
S
Simeng Liu
Z
Zaiyan Hou
M
Meirong Tian
C
Chuchu Wan
C
Caili Huang
J
Jiangping Xu
朱锦涛 (Jintao Zhu) *
DOI:10.1021/acsnano.4c03099delete
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Abstract

Abstract

En 中文
Responsive nanoparticle surfactants (NPSs) can dynamically and reversibly modulate the interfacial interactions between incompatible components, which are essential in the interfacial catalysis, corrosion, and self-assembly of block copolymers (BCPs). However, NPSs with stimuli-responsive behavior often involve tedious chemical synthesis and surface modifications. Herein, we propose a strategy to in situ construct a kind of dynamic and reversible NPSs by the interfacial electrostatic interaction between the negatively charged nanoparticles (NPs) and the positively charged homopolymers. The NPSs assembled at the oil/water interface reduce the interfacial tension and direct the confined assembly of BCP. Meanwhile, the dynamic NPSs can be disassembled by increasing the pH value or introducing competitive electrostatic attractions, which can dynamically and reversibly change the interfacial properties as well as the alignment of polymer chains, enabling BCP microparticles with reversibly switchable lamellar and cylindrical structures. Furthermore, by the introduction of aggregation-induced emission luminogens as tails to the NPSs, the reversible transformation of BCP microparticles can be visualized by fluorescence emission, which is dependent on the nanostructures of microparticles. This work establishes a concept for dynamically manipulating interfacial interactions and reversibly switching BCP microparticles without time-consuming NPS synthesis, showing promising applications in the fabrication of smart materials with switchable structures and properties.
Keywords:
dynamic interfacial assembly
electrostatic interactions
confined assembly
block copolymers
microparticles

Journal

ACS Nano cover
ACS Nano
IF:
16
Papers:
2.6W
Citations:
25.6W

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