材料科学
聚丙烯
复合材料
战术性
空间电荷
泄漏(经济)
电压
嫁接
电介质
介电强度
表面改性
俘获
沸腾
相容性(地球化学)
电流(流体)
共价键
高压
工作(物理)
化学工程
去极化
体积热力学
导电体
作者
Nazirul Mubin bin Normansah,Taehoon Kwon,Hana Kim,Shin‐Ki Hong,S.W. Lee,Se Hee Lee,Ik‐Su Kwon,Masahiro Kozako,Min-Hee Kim,Seunggun Yu
标识
DOI:10.1002/adfm.202520505
摘要
Abstract High‐performance polypropylene (PP) insulation is essential for next‐generation high‐voltage direct current (HVDC) systems. This study presents a scalable, solvent‐free melt grafting strategy to covalently incorporate thermally stable aromatic voltage stabilizers (VSs)—2‐vinylnaphthalene (VN), 1,1‐diphenylethylene (DPE), and 4‐vinylbiphenyl—into isotactic PP. VSs are rationally selected based on their high boiling points, π‐conjugated aromatic structures, and vinyl functionality, enabling compatibility with melt processing and uniform bulk functionalization of PP. Electrical tests showed that VN and DPE markedly improved volume resistivity, suppressed leakage current, and enhanced DC breakdown strength, while their effects diminished at loadings above 1.0 wt.%, respectively. Thermally stimulated depolarization current confirmed that these gains originated from deeper and well‐distributed trap formation. Quantum chemical and finite element simulations further revealed how geometry‐tailored VSs modulate trap formation and suppress space charge accumulation, linking molecular‐scale trapping to macroscopic charge dynamics. This work highlights a practical and recyclable route to engineer PP insulation with superior insulation reliability, offering new insights into stabilizer structure‐property relationships for HVDC applications.
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