材料科学
热导率
环氧树脂
萘
热稳定性
分子动力学
声子
复合材料
玻璃化转变
聚合物
声子散射
热的
Crystal(编程语言)
化学物理
散射
液晶
化学工程
图层(电子)
工作(物理)
分子
戒指(化学)
保温
电导率
化学键
纳米技术
侧链
作者
Junqi Ning,Haonan Liu,Xuewei Jiao,Hongda Zhou,Yun Bai,Runjie Wang,Ting Ma,Haodong Hu,Di Bao,Yanji Zhu,Huaiyuan Wang
摘要
ABSTRACT The low thermal conductivity (TC) of epoxy resin limits its application in thermal management. Introducing liquid crystal units into the polymer can improve the TC. The significant restriction of molecular chain mobility, in the cross‐linked system, combined with the weak π‐π interactions between liquid crystal units and the large interlayer spacing of molecular chains, leads to severe phonon scattering, making it difficult to achieve a substantial increase in TC (through‐plane TC<0.4 W m −1 K −1 ). Herein, we employed an aromatic ring induction‐proximity strategy by bonding naphthalene into the resin cross‐linked network. This approach leverages the π – π interaction between naphthalene rings and liquid crystals to reduce layer spacing between molecular chains, further enhancing TC. The introduction of naphthalene rings can also reduce phonon scattering along the molecular chains. Simultaneously, dynamic ester bonds were introduced to improve the degradability. The resulting resin exhibits high intrinsic thermal conductivity (in‐plane TC 1.05 and through‐plane TC 0.45 W m −1 K −1 ), high glass transition temperature (T g >220 °C), excellent thermal stability (T 5% = 342.7 °C), and good water degradability. Molecular dynamics simulations confirmed that naphthalene ring embedding reduces both interlayer spacing and phonon scattering. This work presents a novel strategy for developing epoxy resins with intrinsically high TC and degradability.
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