首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Remarkable improvements in the stability and thermal conductivity of graphite/ethylene glycol nanofluids caused by a graphene oxide percolation structure
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Remarkable improvements in the stability and thermal conductivity of graphite/ethylene glycol nanofluids caused by a graphene oxide percolation structure

机译:石墨烯氧化物渗流结构显着改善了石墨/乙二醇纳米流体的稳定性和导热性

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Versatile efforts have been made to improve the stability of graphite/ethylene glycol (EG) nanofluids. Primitively, non-dispersible graphite nanoparticles were converted to graphite oxide nanoparticles (GONs) by acid treatment. Although GONs could be well dispersed in EG, the GONs/EG nanofluids exhibited limited stability up to less than 1 day. And then, a GO (2 wt%) percolation structure formed in EG was used to anchor and support GONs by common non-covalent interactions including hydrogen bonds, van der Waals forces and π-π conjugation. Transmission electron microscopy observations revealed that a GON-GO hybrid forms in the GON-GO (2 wt%)/EG nanofluids with evenly distributed GONs on the GO sheets, which accounted for the high stability of nanofluids up to at least 4 weeks obtained from stability tests, in sharp contrast to that of the GONs/EG nanofluids. In addition, due to the better dispersed state of GONs induced by the GO percolation structure, thermal conductivity (TC) tests demonstrated that the TC enhancements of the GON-GO (2 wt%)/EG nanofluids were also strengthened compared to that of GONs/EG nanofluids. Excitingly, the GONs-GO (2 wt%)/EG nanofluids presented here exhibited anomalous thermal conductivity enhancements up to 123% at 21 wt% GONs content and were highly stable, which might have potential applications in engineering field and energy systems.
机译:为了提高石墨/乙二醇(EG)纳米流体的稳定性,已经进行了广泛的努力。最初,不可分散的石墨纳米颗粒通过酸处理转化为氧化石墨纳米颗粒(GONs)。尽管GONs可以很好地分散在EG中,但GONs / EG纳米流体在不到1天的时间内仍显示出有限的稳定性。然后,在EG中形成的GO(2 wt%)渗滤结构用于通过常见的非共价相互作用(包括氢键,范德华力和π-π共轭)锚定和支撑GON。透射电子显微镜观察表明,GON-GO杂化物形成在GON-GO(2 wt%)/ EG纳米流体中,GONs均匀分布在GO片层上,这解释了从获得的至少4周纳米流体的高稳定性。稳定性测试,与GON / EG纳米流体形成鲜明对比。此外,由于GO渗滤结构引起的GON更好的分散状态,导热性(TC)测试表明,与GON相比,GON-GO(2 wt%)/ EG纳米流体的TC增强作用也得到了增强/ EG纳米流体。令人兴奋的是,本文介绍的GONs-GO(2 wt%)/ EG纳米流体在GONs含量为21 wt%时显示出高达123%的反常导热率,并且非常稳定,可能在工程领域和能源系统中具有潜在的应用。

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