| Literature DB >> 31203604 |
Mingmei Wang1,2, Tao Zhang1, Dasha Mao1,3, Yimin Yao1,3, Xiangliang Zeng1,2, Linlin Ren1, Qiran Cai4, Srikanth Mateti4, Lu Hua Li4, Xiaoliang Zeng1, Guoping Du2, Rong Sun1, Ying Chen4, Jian-Bin Xu5, Ching-Ping Wong6.
Abstract
Boron nitride nanotubes (BNNTs), structural analogues of carbon nanotubes, have attracted significant attention due to their superb thermal conductivity, wide bandgap, excellent hydrogen storage capacity, and thermal and chemical stability. Despite considerable progress in the preparation and surface functionalization of BNNTs, it remains a challenge to assemble one-dimensional BNNTs into three-dimensional (3D) architectures (such as aerogels) for practical applications. Here, we report a highly compressive BNNT aerogel reinforced with reduced graphene oxide (rGO) fabricated using a freeze-drying method. The reinforcement effect of rGO and 3D honeycomb-like framework offer the BNNTs/rGO aerogel with a high compression resilience. The BNNTs/rGO aerogels were then infiltrated with polyethylene glycol to prepare a kind of phase change materials. The prepared phase change material composites show zero leakage even at 100 °C and enhanced thermal conductivity, due to the 3D porous structure of the BNNTs/rGO aerogel. This work provides a simple method for the preparation of 3D BNNTs/rGO aerogels for many potential applications, such as high-performance polymer composites.Entities:
Keywords: aerogel; boron nitride nanotubes; mechanical elasticity; polymer composite; reduced graphene oxide
Year: 2019 PMID: 31203604 DOI: 10.1021/acsnano.9b03225
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881