| Literature DB >> 29219292 |
Jing Lin1,2, Xiaohai Yuan1,2, Gen Li1,2, Yang Huang1,2, Weijia Wang1,2, Xin He1,2, Chao Yu1,2, Yi Fang1,2, Zhenya Liu1,2, Chengchun Tang1,2.
Abstract
As a kind of macroscopic boron nitride (BN) architectures, ultralight BN cellular materials with high porosity and great resilience would have a broad range of applications in energy and environment areas. However, creating such BN cellular materials in large sizes has still been proven challenging. Here, we report on the unique self-assembly of one-dimensional porous BN microfibers into an integral three-dimensional BN foam with open-cell cellular architectures. An ultrasonic-assisted self-assembly, freeze-drying, and high-temperature pyrolysis process has been developed for the preparation of cellular BN foam with a large size and desired shape. The developed BN foam has low density, high porosity (∼99.3%), great resilience, and excellent hydrophobic-lipophilic nature. The foam also exhibits excellent absorption capacities for a wide range of organic solvents and oils (wt % of ∼5130-7820%), as well as a high recovery efficiency (∼94%). Moreover, the unique hierarchical porous structure enables the foam to demonstrate a very low thermal conductivity (∼0.035 W/K/m). The excellent thermal insulation performance, superior mechanical property, and superb chemical and thermal stability enable the developed BN foam as an integrating multifunctional material in a broad range of high-end applications.Entities:
Keywords: absorption; boron nitride; foam; large sizes; thermal insulation; ultrasonic-assisted self-assembly
Year: 2017 PMID: 29219292 DOI: 10.1021/acsami.7b16198
Source DB: PubMed Journal: ACS Appl Mater Interfaces ISSN: 1944-8244 Impact factor: 9.229