Jayakumar O D, Abdelhamid Ehab H, Kotari Vasundhara, Mandal Balaji P, Rao Rekha, Naik Vaman M, Naik Ratna, Tyagi A K
Chemistry Division, Bhabha Atomic Research Centre, Mumbai, 400085, India.
Dalton Trans. 2015 Sep 28;44(36):15872-81. doi: 10.1039/c5dt01509j.
Flexible inorganic-organic magneto-electric (ME) nanocomposite films (PVDF, PVDF-GO, PVDF-Fe3O4 and PVDF-GO-Fe3O4), composed of well-dispersed graphene oxide (GO 5 wt%) and magnetic Fe3O4 nanoparticles (5 wt%) embedded into a poly(vinylidene-fluoride) (PVDF) matrix, have been prepared by a solvent casting route. The magnetic, ferroelectric, dielectric, magneto-dielectric (MD) coupling and structural properties of these films have been systematically investigated. Magnetic (Ms = 2.21 emu g(-1)) and ferroelectric (P = 0.065 μC cm(-2)) composite films of PVDF-GO-Fe3O4 (PVDF loaded with 5% GO and 5% Fe3O4) with an MD coupling of 0.02% at room temperature (RT) showed a three times higher dielectric constant than that of the pure PVDF film, with a dielectric loss as low as 0.6. However, the PVDF-Fe3O4 film, which exhibited improved magnetic (Ms = 2.5 emu g(-1)) and MD coupling (0.04%) properties at RT with a lower dielectric loss (0.3), exhibited decreased ferroelectric properties (P = 0.06 μC cm(-2)) and dielectric constant compared to the PVDF-GO-Fe3O4 film. MD coupling measurements carried out as a function of temperature on the multi-functional PVDF-GO-Fe3O4 film showed a systematic increase in MD values up to 100 K and a decrease thereafter. The observed magnetic, ferroelectric, dielectric, MD coupling and structural properties of the nanocomposite films are attributed to the homogeneous dispersion and good alignment of Fe3O4 nanoparticles and GO in the PVDF matrix along with a partial conversion of nonpolar α-phase PVDF to polar β-phase. The above multi-functionality of the composite films of PVDF-Fe3O4 and PVDF-GO-Fe3O4 paves the way for their application in smart multiferroic devices.
通过溶液浇铸法制备了柔性无机-有机磁电(ME)纳米复合薄膜(PVDF、PVDF-GO、PVDF-Fe3O4和PVDF-GO-Fe3O4),这些薄膜由均匀分散在聚偏氟乙烯(PVDF)基体中的氧化石墨烯(GO,5 wt%)和磁性Fe3O4纳米颗粒(5 wt%)组成。对这些薄膜的磁性、铁电、介电、磁电耦合和结构性能进行了系统研究。PVDF-GO-Fe3O4(负载5% GO和5% Fe3O4的PVDF)磁性复合薄膜(Ms = 2.21 emu g(-1))和铁电复合薄膜(P = 0.065 μC cm(-2))在室温(RT)下磁电耦合为0.02%,其介电常数比纯PVDF薄膜高两倍,介电损耗低至0.6。然而,PVDF-Fe3O4薄膜在室温下具有改善的磁性(Ms = 2.5 emu g(-1))和磁电耦合(0.04%)性能,介电损耗较低(0.3),但与PVDF-GO-Fe3O4薄膜相比,其铁电性能(P = 0.06 μC cm(-2))和介电常数有所降低。对多功能PVDF-GO-Fe3O4薄膜进行的磁电耦合测量显示,磁电耦合值在100 K之前系统增加,之后降低。纳米复合薄膜观察到的磁性、铁电、介电、磁电耦合和结构性能归因于Fe3O4纳米颗粒和GO在PVDF基体中的均匀分散和良好排列,以及非极性α相PVDF向极性β相的部分转变。PVDF-Fe3O4和PVDF-GO-Fe3O4复合薄膜的上述多功能性为其在智能多铁性器件中的应用铺平了道路。