Improved Performance of Graphene in Heat Dissipation when Combined with an Orientated Magnetic Carbon Fiber Skeleton under Low-Temperature Thermal Annealing

The high thermal conductivity and stability, outstanding mechanical properties, and low weight make graphene suitable for many applications in the realm of thermal management, especially in high integration systems. Herein, we report a high-performance, low-temperature reduced graphene oxide/magneti...

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Main Authors: Jing Li, Rubai Lei, Jinfeng Lai, Xuyang Chen, Yang Li
Format: Article
Language:English
Published: MDPI AG 2019-03-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/12/6/954
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spelling doaj-56bf085427b245a0ad2a697935a250ae2020-11-24T21:50:23ZengMDPI AGMaterials1996-19442019-03-0112695410.3390/ma12060954ma12060954Improved Performance of Graphene in Heat Dissipation when Combined with an Orientated Magnetic Carbon Fiber Skeleton under Low-Temperature Thermal AnnealingJing Li0Rubai Lei1Jinfeng Lai2Xuyang Chen3Yang Li4School of Chemistry and Chemical Engineering, South China University of Technology, Guangzhou 510641, ChinaSchool of Chemistry and Chemical Engineering, South China University of Technology, Guangzhou 510641, ChinaSchool of Chemistry and Chemical Engineering, South China University of Technology, Guangzhou 510641, ChinaSchool of Chemistry and Chemical Engineering, South China University of Technology, Guangzhou 510641, ChinaSchool of Mechanical & Automotive Engineering, South China University of Technology, Guangzhou 510641, ChinaThe high thermal conductivity and stability, outstanding mechanical properties, and low weight make graphene suitable for many applications in the realm of thermal management, especially in high integration systems. Herein, we report a high-performance, low-temperature reduced graphene oxide/magnetic carbon fiber composite film. Magnetic carbon fibers were prepared using a co-precipitation method, and the graphene oxide solution was prepared using an improved Hummers’ method. The magnetic carbon fibers were orientated by magnetite and immersed in the graphene oxide solution during filtration, followed by annealing at 800 °C. The composite film exhibited improved thermal conductivity (over 600 W/m·K) and mechanical properties (tensile strength of 37.1 MPa and bending cycle of up to 8000). The experimental results illustrate that the graphene in the composite membrane provides heat transfer channels to promote in-plane thermal conductivity, while the magnetic carbon fiber acts as a scaffold to reinforce the mechanical properties and improve the quality of the graphene. Due to the synergistic effect of the graphene and magnetic carbon, this composite has wide potential applications in heat dissipation.https://www.mdpi.com/1996-1944/12/6/954graphenegraphene oxidecarbon fibersthermal conductivity
collection DOAJ
language English
format Article
sources DOAJ
author Jing Li
Rubai Lei
Jinfeng Lai
Xuyang Chen
Yang Li
spellingShingle Jing Li
Rubai Lei
Jinfeng Lai
Xuyang Chen
Yang Li
Improved Performance of Graphene in Heat Dissipation when Combined with an Orientated Magnetic Carbon Fiber Skeleton under Low-Temperature Thermal Annealing
Materials
graphene
graphene oxide
carbon fibers
thermal conductivity
author_facet Jing Li
Rubai Lei
Jinfeng Lai
Xuyang Chen
Yang Li
author_sort Jing Li
title Improved Performance of Graphene in Heat Dissipation when Combined with an Orientated Magnetic Carbon Fiber Skeleton under Low-Temperature Thermal Annealing
title_short Improved Performance of Graphene in Heat Dissipation when Combined with an Orientated Magnetic Carbon Fiber Skeleton under Low-Temperature Thermal Annealing
title_full Improved Performance of Graphene in Heat Dissipation when Combined with an Orientated Magnetic Carbon Fiber Skeleton under Low-Temperature Thermal Annealing
title_fullStr Improved Performance of Graphene in Heat Dissipation when Combined with an Orientated Magnetic Carbon Fiber Skeleton under Low-Temperature Thermal Annealing
title_full_unstemmed Improved Performance of Graphene in Heat Dissipation when Combined with an Orientated Magnetic Carbon Fiber Skeleton under Low-Temperature Thermal Annealing
title_sort improved performance of graphene in heat dissipation when combined with an orientated magnetic carbon fiber skeleton under low-temperature thermal annealing
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2019-03-01
description The high thermal conductivity and stability, outstanding mechanical properties, and low weight make graphene suitable for many applications in the realm of thermal management, especially in high integration systems. Herein, we report a high-performance, low-temperature reduced graphene oxide/magnetic carbon fiber composite film. Magnetic carbon fibers were prepared using a co-precipitation method, and the graphene oxide solution was prepared using an improved Hummers’ method. The magnetic carbon fibers were orientated by magnetite and immersed in the graphene oxide solution during filtration, followed by annealing at 800 °C. The composite film exhibited improved thermal conductivity (over 600 W/m·K) and mechanical properties (tensile strength of 37.1 MPa and bending cycle of up to 8000). The experimental results illustrate that the graphene in the composite membrane provides heat transfer channels to promote in-plane thermal conductivity, while the magnetic carbon fiber acts as a scaffold to reinforce the mechanical properties and improve the quality of the graphene. Due to the synergistic effect of the graphene and magnetic carbon, this composite has wide potential applications in heat dissipation.
topic graphene
graphene oxide
carbon fibers
thermal conductivity
url https://www.mdpi.com/1996-1944/12/6/954
work_keys_str_mv AT jingli improvedperformanceofgrapheneinheatdissipationwhencombinedwithanorientatedmagneticcarbonfiberskeletonunderlowtemperaturethermalannealing
AT rubailei improvedperformanceofgrapheneinheatdissipationwhencombinedwithanorientatedmagneticcarbonfiberskeletonunderlowtemperaturethermalannealing
AT jinfenglai improvedperformanceofgrapheneinheatdissipationwhencombinedwithanorientatedmagneticcarbonfiberskeletonunderlowtemperaturethermalannealing
AT xuyangchen improvedperformanceofgrapheneinheatdissipationwhencombinedwithanorientatedmagneticcarbonfiberskeletonunderlowtemperaturethermalannealing
AT yangli improvedperformanceofgrapheneinheatdissipationwhencombinedwithanorientatedmagneticcarbonfiberskeletonunderlowtemperaturethermalannealing
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