<p>A series of divinylphenyl-acryloyl chloride copolymers (PDVB-<i>co</i>-PACl) is synthesized <i>via</i> atom transfer radical polymerization employing tert-butyl acrylate and divinylbenzene as monomers. PDVB-<i>co</i>-PACl is utilized to graft on the surface of spherical aluminum nitride (AlN) to prepare functionalized AlN (AlN@PDVB-<i>co</i>-PACl). Polymethylhydrosiloxane (PMHS) is then used as the matrix to prepare thermally conductive AlN@PDVB-<i>co</i>-PACl/PMHS composites with AlN@PDVB-<i>co</i>-PACl as fillers through blending and curing. The grafting of PDVB-<i>co</i>-PACl synchronously enhances the hydrolysis resistance of AlN and its interfacial compatibility with PMHS matrix. When the molecular weight of PDVB-<i>co</i>-PACl is 5100&#xa0;g&#xa0;mol<sup>−1</sup> and the grafting density is 0.8&#xa0;wt%, the composites containing 75&#xa0;wt% of AlN@PDVB-<i>co</i>-PACl exhibit the optimal comprehensive performance. The thermal conductivity (<i>λ</i>) of the composite is 1.14&#xa0;W&#xa0;m<sup>−1</sup>&#xa0;K<sup>−1</sup>, which enhances by 20% and 420% compared to the <i>λ</i> of simply physically blended AlN/PMHS composite and pure PMHS, respectively. Meanwhile, AlN@PDVB-<i>co</i>-PACl/PMHS composites display remarkable hydrothermal aging resistance by retaining 99.1% of its <i>λ</i> after soaking in 90&#xa0;°C deionized water for 80&#xa0;h, whereas the <i>λ</i> of the blended AlN/PMHS composites decreases sharply to 93.7%.</p>

错误:搜索内容不能为空,请输入英文关键词
错误:关键词超出字数限制,请精简
高级检索

Functionalized Aluminum Nitride for Improving Hydrolysis Resistances of Highly Thermally Conductive Polysiloxane Composites

  • Mukun He,
  • Lei Zhang,
  • Kunpeng Ruan,
  • Junliang Zhang,
  • Haitian Zhang,
  • Peng Lv,
  • Yongqiang Guo,
  • Xuetao Shi,
  • Hua Guo,
  • Jie Kong,
  • Junwei Gu

摘要

A series of divinylphenyl-acryloyl chloride copolymers (PDVB-co-PACl) is synthesized via atom transfer radical polymerization employing tert-butyl acrylate and divinylbenzene as monomers. PDVB-co-PACl is utilized to graft on the surface of spherical aluminum nitride (AlN) to prepare functionalized AlN (AlN@PDVB-co-PACl). Polymethylhydrosiloxane (PMHS) is then used as the matrix to prepare thermally conductive AlN@PDVB-co-PACl/PMHS composites with AlN@PDVB-co-PACl as fillers through blending and curing. The grafting of PDVB-co-PACl synchronously enhances the hydrolysis resistance of AlN and its interfacial compatibility with PMHS matrix. When the molecular weight of PDVB-co-PACl is 5100 g mol−1 and the grafting density is 0.8 wt%, the composites containing 75 wt% of AlN@PDVB-co-PACl exhibit the optimal comprehensive performance. The thermal conductivity (λ) of the composite is 1.14 W m−1 K−1, which enhances by 20% and 420% compared to the λ of simply physically blended AlN/PMHS composite and pure PMHS, respectively. Meanwhile, AlN@PDVB-co-PACl/PMHS composites display remarkable hydrothermal aging resistance by retaining 99.1% of its λ after soaking in 90 °C deionized water for 80 h, whereas the λ of the blended AlN/PMHS composites decreases sharply to 93.7%.