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Understanding the effect of interfacial engineering on interfacial thermal resistance in nacre-like cellulose nanofiber/graphene film

机译:了解界面工程对丁香纤维素纳米纤维/石墨烯膜中界面热阻的影响

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摘要

Understanding the influence of interface on interfacial thermal resistance (R-b) is important in preparing polymer-based thermal conductive composites. In this work, we demonstrated the competitive relation of the interfacial hydrogen bonding interaction and the thermal insulating effect produced by polydopamine (PDA) modification on R-b in nacre-like cellulose nanofiber/graphene nanosheet (CNF/GNS) film. By increasing PDA grafting amount on GNS, both the interfacial hydrogen bonding interaction, positive role in reducing R-b, and the thermal insulating effect, negative role in reducing R-b, were reinforced simultaneously. For the CNF/GNS film with low filler loading (10 wt%), appropriate PDA grafting amount can maximize its hydrogen bonding effect and simultaneously minimize its thermal insulation effect, thus reducing R-b to 8.61 x 10(-9) m(2) K/W from 1.11 x 10(-8) m(2) K/W and improving thermal conductivity to 13.47 W/mK from 10.91 W/mK comparing to unmodified film. However, for the films with high GNS loading (50 wt%), PDA modification failed to improve the thermal conductivity since the dominant face-to-face direct contact between overlapping GNS (contact thermal resistance) was separated by PDA layer. The new understanding on R-b affected by interfacial modification would act as guiding function in preparing high thermal conductive nacre-like layered structural films.
机译:了解界面对界面热阻(R-B)的影响对于制备基于聚合物的导热复合材料是重要的。在这项工作中,我们证明了界面氢键相互作用的竞争关系和在丁香样纤维素纳米纤维/石墨烯纳米膜(CNF / GNS)膜上的R-B上的多莫多胺(PDA)修饰产生的热绝缘效果。通过增加GNS上的PDA移植量,同时增强界面氢键相互作用,界面氢键相互作用,在还原R-B中的阳性作用,在还原R-B中的负面作用。对于具有低填充载荷(10wt%)的CNF / GNS膜,适当的PDA接枝量可以最大化其氢键效果,并同时最小化其绝热效果,从而将RB降低至8.61×10(-9)m(2)k / W从1.11 x 10(-8)m(2)k / w,从10.91 w / mk的导热率提高到13.47 w / mk,与未经修改的薄膜相比。然而,对于具有高GNS负载(50wt%)的薄膜,PDA改性未能提高导热率,因为通过PDA层分离重叠GNS(接触热阻)之间的显性面对面直接接触。对受界面改性影响的R-B的新了解将作为制备高导热珍珠状层状结构膜的引导功能。

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  • 来源
    《Composites Science and Technology》 |2020年第8期|108229.1-108229.8|共8页
  • 作者单位

    Zhengzhou Univ Natl Engn Res Ctr Adv Polymer Proc Technol Minist Educ Key Lab Mat Proc & Mold Zhengzhou 450002 Henan Peoples R China;

    Zhengzhou Univ Natl Engn Res Ctr Adv Polymer Proc Technol Minist Educ Key Lab Mat Proc & Mold Zhengzhou 450002 Henan Peoples R China;

    Zhengzhou Univ Natl Engn Res Ctr Adv Polymer Proc Technol Minist Educ Key Lab Mat Proc & Mold Zhengzhou 450002 Henan Peoples R China;

    Zhengzhou Univ Natl Engn Res Ctr Adv Polymer Proc Technol Minist Educ Key Lab Mat Proc & Mold Zhengzhou 450002 Henan Peoples R China;

    Wuhan Text Univ Sch Mat Sci & Engn State Key Lab Cultivat Base New Text Mat & Adv Pr Wuhan 430200 Peoples R China;

    Zhengzhou Univ Natl Engn Res Ctr Adv Polymer Proc Technol Minist Educ Key Lab Mat Proc & Mold Zhengzhou 450002 Henan Peoples R China;

    Hunan Univ Sch Phys & Elect Key Lab Micronano Optoelect Devices Minist Educ Changsha 410022 Peoples R China;

    Zhengzhou Univ Natl Engn Res Ctr Adv Polymer Proc Technol Minist Educ Key Lab Mat Proc & Mold Zhengzhou 450002 Henan Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    polymer-matrix composites (PMCs); Layered strcutures; Thermal properties; Interface;

    机译:聚合物 - 基质复合材料(PMC);分层滞留;热特性;界面;

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