Title :
Ab-initio modeling of interfacial region in nanocomposite dielectrics
Author :
Kubyshkina, Elena ; Jonsson, B.L.G. ; Unge, Mikael
Author_Institution :
Sch. of Electr. Eng., Electromagn. Eng., KTH R. Inst. of Technol., Stockholm, Sweden
Abstract :
The interfacial region between a base matrix and nanoparticles in nanocomposite dielectrics is often referred to as the main cause of good performance of nanocomposites as insulating materials. In the present work we compare electronic structure of the interfacial region in the polyethylene magnesium oxide nanocomposite with the electronic structures of its bulk constituents. The calculations were performed with density functional theory, the LDA and AM05 functionals were used. Hydroxylated, silanol-terminated (-SiOH) MgO surfaces and an interface (a surface with grafted through Si alkane chains) were studied. Investigation has shown the presence of surface states in untreated (hydroxylated) MgO (111) surface, while for both silanized surfaces these states are removed. It results in 1.7 eV higher band gap energy compared to the untreated case. Untreated regions present in treated nanoparticle are proposed to behave as traps for electrons.
Keywords :
ab initio calculations; density functional theory; energy gap; filled polymers; interface states; magnesium compounds; nanocomposites; nanoparticles; surface states; AM05 functional; LDA functional; MgO; ab-initio modeling; band gap energy; bulk constituents; density functional theory; electronic structure; hydroxylated silanol-terminated MgO surfaces; insulating materials; interfacial region; nanocomposite dielectrics; nanoparticles; polyethylene magnesium oxide nanocomposite; silanized surfaces; surface states; untreated MgO (111) surface; Dielectrics; Nanoparticles; Photonic band gap; Plastics; Polyethylene; Silicon; Surface treatment;
Conference_Titel :
Electrical Insulation Conference (EIC), 2015 IEEE
Print_ISBN :
978-1-4799-7352-1
DOI :
10.1109/ICACACT.2014.7223522