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可分解、透明且机械稳定的高性能氧化锑锡/纳米纤维素/聚乙烯醇隔热薄膜。

Disintegrable, transparent and mechanically robust high-performance antimony tin oxide/nanocellulose/polyvinyl alcohol thermal insulation films.

机构信息

State Key Lab of Pulp and Paper Engineering, South China University of Technology, Guangzhou 510640, China.

Fiber and Polymer Science Program, Department of Textile Engineering, Chemistry and Science, Wilson College of Textiles, North Carolina State University, Raleigh, NC 27695-8301, USA.

出版信息

Carbohydr Polym. 2021 Aug 15;266:118175. doi: 10.1016/j.carbpol.2021.118175. Epub 2021 May 7.

Abstract

Polymer-based thermal insulation films are widely utilized to reduce the influence of solar radiation. However, current thermal insulation films face several challenges from poor thermal insulation performance and severe environmental pollution, which are caused by the non-disintegratability of polymer substrates. Here, cellulose nanofiber (CNF)/antimony tin oxide (ATO) hybrid films with and without polyvinyl alcohol (PVA) are presented and they can be used as window thermal barrier films and personal thermal management textiles. The hybrid films exhibit prominent thermal insulation performance, blocking 91.07% ultraviolet(UV) light, reflecting 95.19% near-infrared(NIR) light, and transmitting 44.89% visible(VIS) light. Meanwhile, the hybrid films demonstrate high thermal stability, high anti-UV aging stability, and robust mechanical properties. Moreover, the used-up hybrid films based on natural cellulose are of high disintegratability and recyclability. Our present work is anticipated to open up a new avenue for the fabrication of next-generation high-performance thermal insulation films with sustainable and environmentally friendly processes.

摘要

基于聚合物的隔热膜被广泛应用于降低太阳辐射的影响。然而,目前的隔热膜面临着一些挑战,包括较差的隔热性能和严重的环境污染,这是由聚合物基底的不可分解性引起的。在这里,我们提出了具有和不具有聚乙烯醇(PVA)的纤维素纳米纤维(CNF)/氧化锑锡(ATO)混合膜,它们可用作窗户热阻隔膜和个人热管理纺织品。混合膜表现出优异的隔热性能,阻挡 91.07%的紫外线(UV)光,反射 95.19%的近红外(NIR)光,传输 44.89%的可见光(VIS)。同时,混合膜具有高热稳定性、高抗紫外线老化稳定性和良好的机械性能。此外,所使用的基于天然纤维素的混合膜具有高分解性和可回收性。我们的工作有望为制造具有可持续和环境友好工艺的下一代高性能隔热膜开辟新途径。

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