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用于高导热相变复合材料和高效太阳能-热能转换的三维中空还原氧化石墨烯管组件

Three-Dimensional Hollow Reduced Graphene Oxide Tube Assembly for Highly Thermally Conductive Phase Change Composites and Efficient Solar-Thermal Energy Conversion.

作者信息

Li Mingxin, Wang Xuanjie, Odom Lilian, Bryce Keith, Zhao Dong, Shen Junhua, Ma Zongwei, Bae Chulsung, Narayan Shankar, Lian Jie

机构信息

Department of Mechanical, Aerospace, and Nuclear Engineering, Rensselaer Polytechnic Institute, 110 8th Street, Troy, New York 12180, United States.

Department of Materials Science and Engineering, Rensselaer Polytechnic Institute, 110 8th Street, Troy, New York 12180, United States.

出版信息

ACS Appl Mater Interfaces. 2023 Apr 19;15(15):18940-18950. doi: 10.1021/acsami.3c00546. Epub 2023 Apr 10.

Abstract

Due to their extraordinary mechanical strength and electrical and thermal conductivities, graphene fibers and their derivatives have been widely utilized in various functional applications. In this work, we report the synthesis of a three-dimensional (3D) hollow reduced graphene oxide tube assembly (HrGOTA) using the same wet spinning method as graphene fibers. The HrGOTA has high thermal conductivity and displays the unique capability of encapsulating phase change materials for effective solar-thermal energy conversion. The HrGOTA comprises layers of moisture-fused hollow reduced graphene oxide tubes (HrGOTs), whose individual thermal conductivity is up to 578 W m K. By impregnating 1-octadecanol into HrGOTs, a 1-octadecanol-filled HrGOT phase change composite (PCC) with a latent heat of 262.5 J g is obtained. This high latent heat results from the interfacial interaction between 1-octadecanol and the reduced graphene oxide tube, as evidenced by the shifts in XRD patterns of 1-octadecanol-filled and 1-octadecanol/multiwalled carbon nanotube-filled HrGOTA samples. In addition, 1 wt % multiwalled carbon nanotubes are added to the PCC to enhance visible light absorption. Because of their high thermal conductivity and visible light absorption rates, these new PCCs display high solar-thermal energy conversion and storage efficiencies of up to 81.7%, commensurate with state-of-the-art carbon-based PCCs but with significantly lower carbon weight percentages.

摘要

由于其非凡的机械强度以及电学和热导率,石墨烯纤维及其衍生物已被广泛应用于各种功能领域。在这项工作中,我们报告了使用与石墨烯纤维相同的湿法纺丝方法合成三维(3D)中空还原氧化石墨烯管组件(HrGOTA)。HrGOTA具有高导热性,并展现出封装相变材料以实现高效太阳能-热能转换的独特能力。HrGOTA由多层水分融合的中空还原氧化石墨烯管(HrGOTs)组成,其单个热导率高达578 W m K。通过将1-十八醇浸渍到HrGOTs中,获得了潜热为262.5 J g的1-十八醇填充的HrGOT相变复合材料(PCC)。这种高潜热源于1-十八醇与还原氧化石墨烯管之间的界面相互作用,这在1-十八醇填充和1-十八醇/多壁碳纳米管填充的HrGOTA样品的XRD图谱变化中得到了证明。此外,向PCC中添加1 wt%的多壁碳纳米管以增强可见光吸收。由于其高导热率和可见光吸收率,这些新型PCC显示出高达81.7%的高太阳能-热能转换和存储效率,与最先进的碳基PCC相当,但碳重量百分比显著更低。

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