TY - JOUR
T1 - Covalently functionalized hierarchical MnO2@LDH nanostructure as building blocks for fire-safe and mechanic-robust epoxy composites
AU - Wang, Junling
AU - Zheng, Xiaoxi
AU - Zhu, Yu
AU - Wang, Zhirong
AU - Zhou, Haobo
AU - Yu, Shui
N1 - Publisher Copyright:
© 2022 Elsevier B.V.
PY - 2022/8/1
Y1 - 2022/8/1
N2 - The notorious issue of high fire hazard, including the generation of considerable heat and release of plentiful toxic volatiles, is recognized as the bottleneck of extensive use of epoxy resin (EP). Hence, a covalently functionalized hierarchical MnO2@LDH nanostructure (FA-MnO2@LDH) is rationally designed to alleviate these problems. With the incorporation of 2.0 wt% FA-MnO2@LDH, the peak heat release rate and total heat release are reduced by 44.9% and 33.1%, while the total smoke production is decreased by 50.2%, corroborating the greatly impaired heat and smoke emissions. Meanwhile, the reductions on peak CO production rate and total CO production are 46.3% and 41.3%, demonstrating the markedly impeded CO emission. Moreover, the peak CO2 production rate and total CO2 production are reduced by 46.7% and 30.0%, signifying the inhibited burning. Thermogravimetric analysis-infrared spectrometry results also confirm the impeded releases of CO and NO gases. The merit of FA-MnO2@LDH is also confirmed via the flame retardation comparison with other reported fillers. Stemming from the well-generated hierarchical nanostructure-polymer interfaces, the mechanical property is also promoted. Hence, this investigation can provide useful inspirations for fabricating fire-safe and mechanic-robust polymer composites via designing hierarchically tailored nanostructure.
AB - The notorious issue of high fire hazard, including the generation of considerable heat and release of plentiful toxic volatiles, is recognized as the bottleneck of extensive use of epoxy resin (EP). Hence, a covalently functionalized hierarchical MnO2@LDH nanostructure (FA-MnO2@LDH) is rationally designed to alleviate these problems. With the incorporation of 2.0 wt% FA-MnO2@LDH, the peak heat release rate and total heat release are reduced by 44.9% and 33.1%, while the total smoke production is decreased by 50.2%, corroborating the greatly impaired heat and smoke emissions. Meanwhile, the reductions on peak CO production rate and total CO production are 46.3% and 41.3%, demonstrating the markedly impeded CO emission. Moreover, the peak CO2 production rate and total CO2 production are reduced by 46.7% and 30.0%, signifying the inhibited burning. Thermogravimetric analysis-infrared spectrometry results also confirm the impeded releases of CO and NO gases. The merit of FA-MnO2@LDH is also confirmed via the flame retardation comparison with other reported fillers. Stemming from the well-generated hierarchical nanostructure-polymer interfaces, the mechanical property is also promoted. Hence, this investigation can provide useful inspirations for fabricating fire-safe and mechanic-robust polymer composites via designing hierarchically tailored nanostructure.
KW - Fire hazard
KW - Hierarchical nanostructure
KW - Mechanical performance
KW - Toxic volatiles
UR - http://www.scopus.com/inward/record.url?scp=85127368008&partnerID=8YFLogxK
U2 - 10.1016/j.apsusc.2022.153262
DO - 10.1016/j.apsusc.2022.153262
M3 - 文章
AN - SCOPUS:85127368008
SN - 0169-4332
VL - 592
JO - Applied Surface Science
JF - Applied Surface Science
M1 - 153262
ER -