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具有低导热率的多孔硫泡沫的制备与加工。

Preparation and processing of porous sulfur foams having low thermal conductivity.

作者信息

Wadi Vijay S, Jena Kishore K, Khawaja Shahrukh Z, Ranagraj Vengatesan Muthukumarswamy, Alhassan Saeed M

机构信息

Department of Chemical Engineering, Khalifa University of Science and Technology P. O. Box 127788 Abu Dhabi United Arab Emirates

出版信息

RSC Adv. 2019 Feb 5;9(8):4397-4403. doi: 10.1039/c8ra09127g. eCollection 2019 Jan 30.

Abstract

Sulfur-containing polymers prepared the inverse vulcanization technique have attracted considerable attention due to the feasibility of the method to produce stable polysulfides with up to 50-90 wt% of sulfur and their wide range of applications from Li-S batteries to catalysis, self-healing and optical materials. Despite many applications, the development of new advanced materials using sulfur is still in the initial stage. Herein, we reported the preparation and processing of a porous sulfur foam for low thermal conductivity applications by combining inverse vulcanization and template removal techniques. Initially, water-soluble template-embedded cross-linked polysulfides were prepared and hot-pressed to the required shape and size. Later, pores were generated by dissolving the template in water. The porosity of the foam was altered by varying the particle size of template materials. The effects of the templates on the porosity and morphology were discussed and correlated with thermal conductivity. The sulfur foam with a smaller pore size and high porosity showed significant decrease in the thermal conductivity up to ∼0.032 W m K at 25 °C, which was much lower than that of pristine sulfur (0.205 W m K). The present method offers flexibility to modify the foam structure and properties during preparation and processing.

摘要

通过逆硫化技术制备的含硫聚合物因其能够生产出硫含量高达50-90 wt%的稳定多硫化物以及从锂硫电池到催化、自愈和光学材料等广泛的应用而备受关注。尽管有许多应用,但利用硫开发新型先进材料仍处于初始阶段。在此,我们报道了通过结合逆硫化和模板去除技术制备和加工用于低导热率应用的多孔硫泡沫材料。首先,制备了嵌入水溶性模板的交联多硫化物,并热压成所需的形状和尺寸。随后,通过将模板溶解在水中产生孔隙。通过改变模板材料的粒径来改变泡沫的孔隙率。讨论了模板对孔隙率和形态的影响,并将其与热导率相关联。孔径较小且孔隙率高的硫泡沫在25°C时热导率显著降低至约0.032 W m K,远低于原始硫的热导率(0.205 W m K)。本方法在制备和加工过程中为改变泡沫结构和性能提供了灵活性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9b61/9060573/b779db221804/c8ra09127g-f1.jpg

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