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基于深共晶溶剂的石墨烯纳米流体的合成与热物理性质

Synthesis and thermo-physical properties of deep eutectic solvent-based graphene nanofluids.

作者信息

Fang Y K, Osama M, Rashmi W, Shahbaz K, Khalid M, Mjalli F S, Farid M M

机构信息

School of Engineering, Taylor's University, 47500 Subang Jaya, Selangor DE, Malaysia.

出版信息

Nanotechnology. 2016 Feb 19;27(7):075702. doi: 10.1088/0957-4484/27/7/075702. Epub 2016 Jan 14.

Abstract

This study introduces a new class of heat transfer fluids by dispersing functionalised graphene oxide nanoparticles (GNPs) in ammonium and phosphonium-based deep eutectic solvents (DESs) without the aid of a surfactant. Different molar ratios of salts and hydrogen bond donors (HBD) were used to synthesise DESs for the preparation of different concentrations of graphene nanofluids (GNFs). The concentrations of GNPs were 0.01 wt%, 0.02 wt% and 0.05 wt %. Homogeneous and stable suspensions of nanofluids were obtained by high speed homogenisation and an ultrasonication process. The stability of the GNFs was determined through visual observation for 4 weeks followed by a centrifugal process (5000-20,000 rpm) for 30 min in addition to zeta potential studies. Dispersion of the GNPs in DES was observed using an optical microscope. The synthesised DES-based GNFs showed no particle agglomeration and formation of sediments in the nanofluids. Thermo-physical properties such as thermal conductivity and specific heat of the nanofluids were also investigated in this research. The highest thermal conductivity enhancement of 177% was observed. The findings of this research provide a new class of engineered fluid for heat transfer applications as a function of temperature, type and composition DESs as well as the GNPs concentration.

摘要

本研究通过在铵基和鏻基深共熔溶剂(DESs)中分散功能化氧化石墨烯纳米颗粒(GNPs),在不借助表面活性剂的情况下引入了一类新型传热流体。使用不同摩尔比的盐和氢键供体(HBD)合成DESs,以制备不同浓度的石墨烯纳米流体(GNFs)。GNPs的浓度分别为0.01 wt%、0.02 wt%和0.05 wt%。通过高速均质和超声处理获得了纳米流体的均匀稳定悬浮液。除了zeta电位研究外,还通过4周的目视观察以及随后在5000 - 20000 rpm下离心30分钟来测定GNFs的稳定性。使用光学显微镜观察GNPs在DES中的分散情况。合成的基于DES的GNFs在纳米流体中未观察到颗粒团聚和沉积物形成。本研究还对纳米流体的热导率和比热容等热物理性质进行了研究。观察到最高热导率提高了177%。本研究结果提供了一类新型工程流体,可作为温度、DESs类型和组成以及GNPs浓度的函数用于传热应用。

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