聚电解质
偶极子
化学物理
静电学
库仑
极性(国际关系)
纳米技术
物理
工作(物理)
透视图(图形)
化学
静电
化学极性
相变
分子动力学
材料科学
机制(生物学)
能源景观
静电相互作用
内在无序蛋白质
统计物理学
非共价相互作用
合理设计
复杂系统
相(物质)
标识
DOI:10.1021/acsapm.5c04666
摘要
Dipole interactions are ubiquitous in nature and constitute a fundamental force governing the conformational behavior, stability, and self-assembly of polyelectrolyte systems. While the study of polyelectrolytes has traditionally been anchored in the language of long-range Coulombic interactions, this mean-field perspective often fails to capture complex many-body effects and short-range correlations that are critical to molecular function. This review provides a comprehensive examination of dipoles in polyelectrolyte systems, arguing that dipole interactions often represent a more universal framework than simple electrostatics in describing complex fluids. We analyze the diverse origins of dipoles─ranging from intrinsic molecular polarity and ion-pair formation to zwitterionic dipole–dipole associations─and demonstrate theoretical evidence that dipole potentials can create significantly deeper energy wells than screened Coulomb potentials at the ion-pair scale. Structured along a continuum of increasing confinement, we systematically explore dipole-driven behaviors in solutions, gels, interfaces, nanopores, and melts/glasses. By elucidating the mechanisms by which dipoles modulate phase transitions and transport properties across these environments, this work offers essential insights for decoding physiological functions and guiding the rational design of advanced functional materials with tailored properties.
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