| Literature DB >> 29182295 |
Qingyu Peng1,2, Yuyang Qin1, Xu Zhao1, Xianxian Sun1,2, Qiang Chen1, Fan Xu1, Zaishan Lin1, Ye Yuan1, Ying Li1,2, Jianjun Li1, Weilong Yin1,2, Chao Gao3, Fan Zhang4, Xiaodong He1,2, Yibin Li1,2.
Abstract
Lightweight, high-performance, thermally insulating, and antifrosting porous materials are in increasing demand to improve energy efficiency in many fields, such as aerospace and wearable devices. However, traditional thermally insulating materials (porous ceramics, polymer-based sponges) could not simultaneously meet these demands. Here, we propose a hierarchical assembly strategy for producing nanocomposite foams with lightweight, mechanically flexible, superinsulating, and antifrosting properties. The nanocomposite foams consist of a highly anisotropic reduced graphene oxide/polyimide (abbreviated as rGO/PI) network and hollow graphene oxide microspheres. The hierarchical nanocomposite foams are ultralight (density of 9.2 mg·cm-3) and exhibit ultralow thermal conductivity of 9 mW·m-1·K-1, which is about a third that of traditional polymer-based insulating materials. Meanwhile, the nanocomposite foams show excellent icephobic performance. Our results show that hierarchical nanocomposite foams have promising applications in aerospace, wearable devices, refrigerators, and liquid nitrogen/oxygen transportation.Entities:
Keywords: antifrosting; graphene oxide; hierarchical; lightweight; thermally insulating
Year: 2017 PMID: 29182295 DOI: 10.1021/acsami.7b14604
Source DB: PubMed Journal: ACS Appl Mater Interfaces ISSN: 1944-8244 Impact factor: 9.229