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基于超绝热聚异氰酸酯的气凝胶:对最佳溶剂体系的有针对性搜索。

Superinsulating Polyisocyanate Based Aerogels: A Targeted Search for the Optimum Solvent System.

机构信息

Laboratory for Building Energy Materials and Components, Swiss Federal Laboratories for Materials Science and Technology, EMPA , Überlandstrasse 129, 8600 Dübendorf, Switzerland.

Sustainable Innovation Department, Recticel N.V. , Damstraat 2, Industriezone 7, 9230 Wetteren, Belgium.

出版信息

ACS Appl Mater Interfaces. 2017 May 31;9(21):18222-18230. doi: 10.1021/acsami.7b03344. Epub 2017 May 18.

Abstract

Polyisocyanate based aerogels combine ultralow thermal conductivities with better mechanical properties than silica aerogel, but these properties critically depend on the nature of the gelation solvent, perhaps more so than on any other parameter. Here, we present a systematic study of the relationship between the polyurethane-polyisocyanurate (PUR-PIR) aerogel microstructure, surface area, thermal conductivity, and density and the gelation solvent's Hansen solubility parameters for an industrially relevant PUR-PIR rigid foam formulation. We first investigated aerogels prepared in acetone-dimethyl sulfoxide (DMSO) blends and observed a minimum in thermal conductivity (λ) and maximum in specific surface area for an acetone:DMSO ratio of 85:15 v/v. We then prepared PUR-PIR aerogels in 32 different solvent blends, divided into three series with δ, δ, and δ fixed at 15.94, 11.30, and 7.48 MPa, respectively, corresponding to the optimum parameters for the acetone:DMSO series. The aerogel properties display distinct dependencies on the various solubility parameters: aerogels with low thermal conductivity can be synthesized in solvents with a high δ parameter (above 7.2) and δ around 16.3 MPa. In contrast, the δ parameter is of lesser importance. Our study highlights the importance of the gelation solvent, clarifies the influence of the different solvent properties, and provides a methodology for a targeted search across the solvent chemical space based on the Hansen solubility parameters.

摘要

基于多异氰酸酯的气凝胶结合了超低导热率和比二氧化硅气凝胶更好的机械性能,但这些性能关键取决于凝胶溶剂的性质,也许比任何其他参数都更为关键。在这里,我们对工业相关的 PUR-PIR 硬质泡沫配方的聚氨酯-聚异氰脲酸酯 (PUR-PIR) 气凝胶微观结构、比表面积、导热率和密度与凝胶溶剂 Hansen 溶解度参数之间的关系进行了系统研究。我们首先研究了在丙酮-二甲基亚砜 (DMSO) 混合物中制备的气凝胶,发现当丙酮:DMSO 比为 85:15v/v 时,导热率 (λ) 最低,比表面积最大。然后,我们在 32 种不同的溶剂混合物中制备了 PUR-PIR 气凝胶,分为三个系列,δ、δ 和 δ 分别固定在 15.94、11.30 和 7.48 MPa,分别对应于丙酮:DMSO 系列的最佳参数。气凝胶性能对各种溶解度参数表现出明显的依赖性:可以在具有高 δ 参数(高于 7.2)和 δ 约 16.3 MPa 的溶剂中合成具有低导热率的气凝胶。相比之下,δ 参数的重要性较小。我们的研究强调了凝胶溶剂的重要性,阐明了不同溶剂性质的影响,并提供了一种基于 Hansen 溶解度参数在溶剂化学空间中进行有针对性搜索的方法。

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