4.7 Article

Cost-Effective Fabrication of Modified Palygorskite-Reinforced Rigid Polyurethane Foam Nanocomposites

期刊

NANOMATERIALS
卷 12, 期 4, 页码 -

出版社

MDPI
DOI: 10.3390/nano12040609

关键词

rigid polyurethane foam nanocomposites; modified palygorskite; cellular structure; mechanical properties; thermal stability; insulation nanomaterials

资金

  1. National Key R&D Program of China [2021YFC1910605]
  2. National Natural Science Foundation of China [51874115]
  3. Introduced Overseas Scholars Program of Hebei province, China [C201808]
  4. Enterprise Science and Technology Commissioner Project of Tianjin City, China [19JCTPJC56100]
  5. Excellent Young Scientist Foundation of Hebei province, China [E2018202241]

向作者/读者索取更多资源

This study presents a one-step method to prepare nanocomposites of palygorskite and rigid polyurethane foams (RPUFs) by modifying palygorskite with a silane coupling agent. The addition of modified palygorskite significantly enhances the mechanical properties and thermal stability of the nanocomposites. The small cell size and uniform cellular structure of the nanocomposites contribute to their improved thermal insulation performance. These nanocomposites have great potential in building insulation.
Integration of nanoclay minerals into rigid polyurethane foams (RPUFs) is a cost-effective solution to enhance foam's performance via environmental protection technology. In this work, palygorskite/RPUFs nanocomposites (Pal/RPUFNs) with excellent mechanical properties and thermal stability were prepared via a one-step method, using 4,4'-diphenylmethane diisocyanate and polyether polyol as the starting materials, coupled with Pal modified by silane coupling agent KH570. The effects of the modified Pal on the mechanics, morphology, and thermal properties of the nanocomposites were studied systematically. When the content of the modified Pal was 8 wt% of polyether polyol, the elastic modulus and compressive strength of the Pal/RPUFNs were increased by ca. 131% and 97%, respectively. The scanning electron microscopy images indicated that the addition of the modified Pal significantly decreased the cell diameter of the Pal/RPUFNs. The results of thermogravimetric and derivative thermogravimetry analyses revealed that the addition of the modified Pal increased the thermal weight loss central temperature of the Pal/RPUFNs, showing better thermal stability in comparison with the pure RPUFs. A self-made evaluation device was used to estimate the thermal insulation ability of the Pal/RPUFNs. It was found that the small cell size and uniform cellular structure were keys to improving the thermal insulation performance of the RPUFs. The prepared Pal/RPUFNs are expected to have great potential in the field of building insulation.

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