Key Laboratory of Applied Chemistry and Nanotechnology at Universities of Jilin Province, Changchun University of Science and Technology , Changchun 130022, China.
ACS Appl Mater Interfaces. 2016 Oct 5;8(39):26226-26234. doi: 10.1021/acsami.6b08522. Epub 2016 Sep 22.
Dual-layered composite nanofibrous membrane equipped with electrical conduction, magnetism and photoluminescence trifunctionality is constructed via electrospinning. The composite membrane consists of a polyaniline (PANI)/FeO nanoparticles (NPs)/polyacrylonitrile (PAN) tuned electrical-magnetic bifunctional nanofibrous layer at one side and a Eu(TTA)(TPPO)/polyvinylpyrrolidone (PVP) photoluminescent nanofibrous layer at the other side, and the two layers are tightly combined face-to-face together into the novel dual-layered composite membrane with trifunctionality. The electric conductivity and magnetism of electrical-magnetic bifunctionality can be respectively tunable via modulating the respective PANI and FeO NPs contents, and the highest electric conductivity approaches the order of 1 × 10 S cm. Predominant red emission at 615 nm can be obviously observed in the photoluminescent layer under 366 nm excitation. Moreover, the luminescent intensity of photoluminescent layer is almost unaffected by the electrical-magnetic bifunctional layer because of the fact that the photoluminescent materials have been successfully isolated from dark-colored PANI and FeO NPs. The novel dual-layered composite nanofibrous membrane with trifunctionality has potentials in many fields. Furthermore, the design philosophy and fabrication method for the dual-layered multifunctional membrane provide a new and facile strategy toward other membranes with multifunctionality.
通过静电纺丝构建了具有电传导、磁和光致发光三种功能的双层复合纳米纤维膜。该复合膜由聚邻苯二胺(PANI)/FeO 纳米颗粒(NPs)/聚丙烯腈(PAN)调谐的电-磁双功能纳米纤维层构成,另一侧为 Eu(TTA)(TPPO)/聚乙烯吡咯烷酮(PVP)光致发光纳米纤维层,两层紧密面对面地结合在一起,形成具有三种功能的新型双层复合膜。电-磁双功能的电导率和磁性可以通过调节各自的 PANI 和 FeO NPs 含量来分别调节,最高电导率接近 1×10 S cm。在 366nm 激发下,光致发光层中可以明显观察到 615nm 的主要红色发射。此外,由于光致发光材料已成功与深颜色的 PANI 和 FeO NPs 隔离,因此光致发光层的发光强度几乎不受电-磁双功能层的影响。具有三种功能的新型双层复合纳米纤维膜在许多领域都具有潜力。此外,双层多功能膜的设计理念和制造方法为其他多功能膜提供了一种新的简便策略。