纳米纤维
材料科学
纳米技术
聚合物
高分子
静电纺丝
分子动力学
纳秒
可扩展性
纳米尺度
喷射(流体)
毛细管作用
再现性
设计要素和原则
理论(学习稳定性)
纳米光刻
微流控
计算机科学
化学物理
生物系统
作者
Lan Yi,Christian Dreyer
出处
期刊:Polymers
[Multidisciplinary Digital Publishing Institute]
日期:2026-04-10
卷期号:18 (8): 929-929
标识
DOI:10.3390/polym18080929
摘要
Electrospinning is a versatile technique for producing polymer nanofibers with high ratios of surface area to volume and tunable porosity. Conventional approach to the optimization of processing parameters such as voltage and flow rate frequently encounters limitations in reproducibility and scalability. This review proposes a comprehensive framework that integrates macromolecular design principles with established electrohydrodynamic theories. We analyze how intrinsic molecular traits, specifically chain entanglement density, molecular weight distribution (MWD), topological architecture, and polymer-solvent thermodynamic interactions, define the boundaries of jet stability and solidification. Key findings highlight that while molecular weight establishes a baseline for spinnability, the MWD dictates the dynamic response under extreme deformation. Notably, high-molecular-weight fractions act as elastic load-bearers that suppress capillary breakup. Furthermore, we discuss here how molecular architecture and solvent-mediated segmental mobility determine whether molecular orientation is kinetically trapped or relaxed during the nanosecond timescales of jet flight. By establishing a hierarchical design logic prioritizing molecular and formulation variables over processing parameters, this framework provides a robust strategy to overcome challenges in scalability and reproducibility, positioning electrospinning as a sensitive probe for macromolecular dynamics under extreme elongation.
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