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化学边缘羧基化石墨烯增强聚醚酰亚胺-石墨烯纳米复合材料的热导率。

Chemically Edge-Carboxylated Graphene Enhances the Thermal Conductivity of Polyetherimide-Graphene Nanocomposites.

作者信息

Tarannum Fatema, Muthaiah Rajmohan, Danayat Swapneel, Foley Kayla, Annam Roshan S, Walters Keisha B, Garg Jivtesh

机构信息

School of Aerospace and Mechanical Engineering, University of Oklahoma, Norman, Oklahoma 73019, United States.

Department of Chemical Engineering, University of Arkansas, Fayetteville, Arkansas 72701, United States.

出版信息

ACS Appl Mater Interfaces. 2022 Mar 30;14(12):14753-14763. doi: 10.1021/acsami.1c25279. Epub 2022 Mar 15.

Abstract

In this work, we demonstrate that edge oxidation of graphene can enable larger enhancement in thermal conductivity () of graphene nanoplatelet (GnP)/polyetherimide (PEI) composites relative to oxidation of the basal plane of graphene. Edge oxidation offers the advantage of leaving the basal plane of graphene intact, preserving its high in-plane thermal conductivity ( > 2000 W m K), while, simultaneously, the oxygen groups introduced on the graphene edge enhance interfacial thermal conductance through hydrogen bonding with oxygen groups of PEI, enhancing the overall polymer composite thermal conductivity. Edge oxidation is achieved in this work by oxidizing graphene in the presence of sodium chlorate and hydrogen peroxide, thereby introducing an excess of carboxyl groups on the edge of graphene. Basal plane oxidation of graphene, on the other hand, is achieved through the Hummers method, which distorts the sp carbon-carbon network of graphene, dramatically lowering its intrinsic thermal conductivity, causing the BGO/PEI (BGO = basal-plane oxidized graphene or basal-plane-functionalized graphene oxide) composite's value to be even lower than pristine GnP/PEI composite's value. The resulting thermal conductivity of the EGO/PEI (EGO = edge-oxidized graphene or edge-functionalized graphene oxide) composite is found to be enhanced by 18%, whereas that of the BGO/PEI composite is diminished by 57%, with respect to the pristine GnP/PEI composite with 10 wt % GnP content. Two-dimensional Raman mapping of GnPs is used to confirm and distinguish the location of oxygen functional groups on graphene. The superior effect of edge bonding presented in this work can lead to fundamentally novel pathways for achieving high thermal conductivity polymer composites.

摘要

在本工作中,我们证明相对于石墨烯基面的氧化,石墨烯的边缘氧化能够使石墨烯纳米片(GnP)/聚醚酰亚胺(PEI)复合材料的热导率()得到更大程度的提高。边缘氧化的优势在于使石墨烯的基面保持完整,保留其较高的面内热导率(>2000 W m K),同时,在石墨烯边缘引入的氧基团通过与PEI的氧基团形成氢键增强界面热导率,从而提高整体聚合物复合材料的热导率。在本工作中,通过在氯酸钠和过氧化氢存在下氧化石墨烯实现边缘氧化,从而在石墨烯边缘引入过量的羧基。另一方面,石墨烯基面的氧化是通过Hummers方法实现的,该方法会扭曲石墨烯的sp碳 - 碳网络,极大地降低其本征热导率,导致BGO/PEI(BGO = 基面氧化石墨烯或基面功能化氧化石墨烯)复合材料的 值甚至低于原始GnP/PEI复合材料的 值。相对于具有10 wt% GnP含量的原始GnP/PEI复合材料,发现EGO/PEI(EGO = 边缘氧化石墨烯或边缘功能化氧化石墨烯)复合材料的热导率提高了18%,而BGO/PEI复合材料的热导率降低了57%。利用GnP的二维拉曼映射来确认和区分石墨烯上氧官能团的位置。本工作中呈现的边缘键合的优异效果能够为实现高导热率聚合物复合材料带来全新的途径。

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