| Literature DB >> 29240398 |
Qian Wu1, Li-Xiu Gong1, Yang Li1, Cheng-Fei Cao1, Long-Cheng Tang1,2, Lianbin Wu1, Li Zhao1, Guo-Dong Zhang1, Shi-Neng Li1,3, Jiefeng Gao4, Yongjin Li1, Yiu-Wing Mai2.
Abstract
Design and development of smart sensors for rapid flame detection in postcombustion and early fire warning in precombustion situations are critically needed to improve the fire safety of combustible materials in many applications. Herein, we describe the fabrication of hierarchical coatings created by assembling a multilayered graphene oxide (GO)/silicone structure onto different combustible substrate materials. The resulting coatings exhibit distinct temperature-responsive electrical resistance change as efficient early warning sensors for detecting abnormal high environmental temperature, thus enabling fire prevention below the ignition temperature of combustible materials. After encountering a flame attack, we demonstrate extremely rapid flame detection response in 2-3 s and excellent flame self-extinguishing retardancy for the multilayered GO/silicone structure that can be synergistically transformed to a multiscale graphene/nanosilica protection layer. The hierarchical coatings developed are promising for fire prevention and protection applications in various critical fire risk and related perilous circumstances.Entities:
Keywords: flame detecting/warning sensor; graphene oxide; hierarchical coatings; silicone; synergistic flame retardancy; temperature-responsive resistance change
Year: 2017 PMID: 29240398 DOI: 10.1021/acsnano.7b06590
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881