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银微球掺杂多孔碳激发的具有优异热性能的形状稳定相变材料:制备、优化及机理

Silver microsphere doping porous-carbon inspired shape-stable phase change material with excellent thermal properties: preparation, optimization, and mechanism.

作者信息

Zhang Junwei, Chen Yan, Nie Zeguang, Chen Zhengshou, Gao Junkai

机构信息

School of Naval Architecture and Maritime, Zhejiang Ocean University, Zhoushan, 316022, China.

出版信息

Sci Rep. 2020 Nov 30;10(1):20843. doi: 10.1038/s41598-020-77901-6.

Abstract

In this study, silver microspheres (SMS) were introduced into cotton stalk porous-carbon (CSP) to prepare silver microsphere doping porous-carbon (SMS-CSP), and then SMS-CSP was used as the matrix of polyethylene glycol (PEG) to synthesize shape-stable phase change material of PEG/SMS-CSP. It was found that the introduction of SMS into CSP could not only greatly improve the loading capacity of the porous-carbon for PEG, but also could increase the thermal conductivity of PEG/SMS-CSP. Additionally, the method of introducing SMS into porous-carbon had the advantages of environmental protection and simple operation. Moreover, the raw material of cotton stalk is a kind of agricultural waste, which has the merits of wide source, low price and easy to obtain. Furthermore, in the preparation of cotton stalk porous-carbon, with the increase of pyrolysis temperature the thermal conductivity of PEG/SMS-CSP could be enhanced significantly. The mechanism about the enhancement of thermal conductivity was clarified, which could provide more basic theory for the study about the thermal conductivity of shape-stable phase change materials (ss-PCMs) based on porous-carbon.

摘要

在本研究中,将银微球(SMS)引入棉秆多孔碳(CSP)中以制备银微球掺杂多孔碳(SMS-CSP),然后将SMS-CSP用作聚乙二醇(PEG)的基质以合成PEG/SMS-CSP形状稳定相变材料。研究发现,将SMS引入CSP不仅可以大大提高多孔碳对PEG的负载能力,还可以提高PEG/SMS-CSP的热导率。此外,将SMS引入多孔碳的方法具有环保和操作简单的优点。而且,棉秆原料是一种农业废弃物,具有来源广泛、价格低廉且易于获取的优点。此外,在制备棉秆多孔碳时,随着热解温度的升高,PEG/SMS-CSP的热导率可显著提高。阐明了热导率增强的机理,可为基于多孔碳的形状稳定相变材料(ss-PCM)热导率的研究提供更多基础理论。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bc9b/7704672/3ff46fc0bdae/41598_2020_77901_Fig1_HTML.jpg

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