Interfacial Hydrogen Bonds and Their Influence Mechanism on Increasing the Thermal Stability of Nano-SiO2-Modified Meta-Aramid Fibres

For further analysis of the effect of nano-doping on the properties of high polymers and research into the mechanism behind modified interfacial hydrogen bonds, a study on the formation probability of nano-SiO2/meta-aramid fibre interfacial hydrogen bonds and the strengthening mechanism behind inter...

Full description

Bibliographic Details
Main Authors: Chao Tang, Xu Li, Zhiwei Li, Jian Hao
Format: Article
Language:English
Published: MDPI AG 2017-10-01
Series:Polymers
Subjects:
Online Access:https://www.mdpi.com/2073-4360/9/10/504
id doaj-6c83820ccf1442709583caa9544d71b1
record_format Article
spelling doaj-6c83820ccf1442709583caa9544d71b12020-11-24T23:12:09ZengMDPI AGPolymers2073-43602017-10-0191050410.3390/polym9100504polym9100504Interfacial Hydrogen Bonds and Their Influence Mechanism on Increasing the Thermal Stability of Nano-SiO2-Modified Meta-Aramid FibresChao Tang0Xu Li1Zhiwei Li2Jian Hao3College of Engineering and Technology, Southwest University, Chongqing 400715, ChinaCollege of Engineering and Technology, Southwest University, Chongqing 400715, ChinaCollege of Engineering and Technology, Southwest University, Chongqing 400715, ChinaLaboratory of Power Transmission Equipment & System Security and New Technology, Chongqing University, Chongqing 400044, ChinaFor further analysis of the effect of nano-doping on the properties of high polymers and research into the mechanism behind modified interfacial hydrogen bonds, a study on the formation probability of nano-SiO2/meta-aramid fibre interfacial hydrogen bonds and the strengthening mechanism behind interfacial hydrogen bonds on the thermal stability of meta-aramid fibres using molecular dynamics is performed in this paper. First, the pure meta-aramid fibre and nano-SiO2/meta-aramid fibre mixed models with nanoparticle radiuses of 3, 5, 7 and 9 Å (1 Å = 10−1 nm) are built, and then the optimization process and dynamics simulation of the models are conducted. The dynamics simulation results indicate that the number of hydrogen bonds increase due to the doping by nano-SiO2 and that the number of interfacial hydrogen bonds increases with the nanoparticle radius. By analysing the hydrogen bond formation probability of all the atom pairs in the mixed model with pair correlation functions (PCFs), it can be observed that the hydrogen bond formation probability between the oxygen atom and hydrogen atom on the nanoparticle surface is the greatest. An effective way to increase the number of interfacial hydrogen bonds in nano-SiO2 and meta-aramid fibres is to increase the number of hydrogen atoms on the nano-silica surface and oxygen atoms in the meta-aramid fibre. By using the radial distribution function (RDF), the conclusion can be further drawn that the hydrogen bond formation probability is at a maximum when the atomic distance is 2.7–2.8 Å; therefore, increasing the number of atoms within this range can significantly increase the formation probability of hydrogen bonds. According to the results of chain movement, the existence of interfacial hydrogen bonds effectively limits the free movement of the molecular chains of meta-aramid fibres and enhances the thermal stability of meta-aramid fibres. The existence of interfacial hydrogen bonds is one of the important reasons for formation of the stable interface structure between nanoparticles and meta-aramid fibres. In addition, a nanoparticle with a small radius improves the interfacial hydrogen bond energy density and interfacial interaction energy density, enhancing the stability of the mixed model interface.https://www.mdpi.com/2073-4360/9/10/504Nano SiO2meta-aramid fibreinterfacial hydrogen bondsdopingmicroscopic mechanism
collection DOAJ
language English
format Article
sources DOAJ
author Chao Tang
Xu Li
Zhiwei Li
Jian Hao
spellingShingle Chao Tang
Xu Li
Zhiwei Li
Jian Hao
Interfacial Hydrogen Bonds and Their Influence Mechanism on Increasing the Thermal Stability of Nano-SiO2-Modified Meta-Aramid Fibres
Polymers
Nano SiO2
meta-aramid fibre
interfacial hydrogen bonds
doping
microscopic mechanism
author_facet Chao Tang
Xu Li
Zhiwei Li
Jian Hao
author_sort Chao Tang
title Interfacial Hydrogen Bonds and Their Influence Mechanism on Increasing the Thermal Stability of Nano-SiO2-Modified Meta-Aramid Fibres
title_short Interfacial Hydrogen Bonds and Their Influence Mechanism on Increasing the Thermal Stability of Nano-SiO2-Modified Meta-Aramid Fibres
title_full Interfacial Hydrogen Bonds and Their Influence Mechanism on Increasing the Thermal Stability of Nano-SiO2-Modified Meta-Aramid Fibres
title_fullStr Interfacial Hydrogen Bonds and Their Influence Mechanism on Increasing the Thermal Stability of Nano-SiO2-Modified Meta-Aramid Fibres
title_full_unstemmed Interfacial Hydrogen Bonds and Their Influence Mechanism on Increasing the Thermal Stability of Nano-SiO2-Modified Meta-Aramid Fibres
title_sort interfacial hydrogen bonds and their influence mechanism on increasing the thermal stability of nano-sio2-modified meta-aramid fibres
publisher MDPI AG
series Polymers
issn 2073-4360
publishDate 2017-10-01
description For further analysis of the effect of nano-doping on the properties of high polymers and research into the mechanism behind modified interfacial hydrogen bonds, a study on the formation probability of nano-SiO2/meta-aramid fibre interfacial hydrogen bonds and the strengthening mechanism behind interfacial hydrogen bonds on the thermal stability of meta-aramid fibres using molecular dynamics is performed in this paper. First, the pure meta-aramid fibre and nano-SiO2/meta-aramid fibre mixed models with nanoparticle radiuses of 3, 5, 7 and 9 Å (1 Å = 10−1 nm) are built, and then the optimization process and dynamics simulation of the models are conducted. The dynamics simulation results indicate that the number of hydrogen bonds increase due to the doping by nano-SiO2 and that the number of interfacial hydrogen bonds increases with the nanoparticle radius. By analysing the hydrogen bond formation probability of all the atom pairs in the mixed model with pair correlation functions (PCFs), it can be observed that the hydrogen bond formation probability between the oxygen atom and hydrogen atom on the nanoparticle surface is the greatest. An effective way to increase the number of interfacial hydrogen bonds in nano-SiO2 and meta-aramid fibres is to increase the number of hydrogen atoms on the nano-silica surface and oxygen atoms in the meta-aramid fibre. By using the radial distribution function (RDF), the conclusion can be further drawn that the hydrogen bond formation probability is at a maximum when the atomic distance is 2.7–2.8 Å; therefore, increasing the number of atoms within this range can significantly increase the formation probability of hydrogen bonds. According to the results of chain movement, the existence of interfacial hydrogen bonds effectively limits the free movement of the molecular chains of meta-aramid fibres and enhances the thermal stability of meta-aramid fibres. The existence of interfacial hydrogen bonds is one of the important reasons for formation of the stable interface structure between nanoparticles and meta-aramid fibres. In addition, a nanoparticle with a small radius improves the interfacial hydrogen bond energy density and interfacial interaction energy density, enhancing the stability of the mixed model interface.
topic Nano SiO2
meta-aramid fibre
interfacial hydrogen bonds
doping
microscopic mechanism
url https://www.mdpi.com/2073-4360/9/10/504
work_keys_str_mv AT chaotang interfacialhydrogenbondsandtheirinfluencemechanismonincreasingthethermalstabilityofnanosio2modifiedmetaaramidfibres
AT xuli interfacialhydrogenbondsandtheirinfluencemechanismonincreasingthethermalstabilityofnanosio2modifiedmetaaramidfibres
AT zhiweili interfacialhydrogenbondsandtheirinfluencemechanismonincreasingthethermalstabilityofnanosio2modifiedmetaaramidfibres
AT jianhao interfacialhydrogenbondsandtheirinfluencemechanismonincreasingthethermalstabilityofnanosio2modifiedmetaaramidfibres
_version_ 1725602095218819072