• 更多栏目

    董旭峰

    • 教授     博士生导师   硕士生导师
    • 主要任职:材料科学与工程学院副院长
    • 性别:男
    • 毕业院校:哈尔滨工业大学
    • 学位:博士
    • 所在单位:材料科学与工程学院
    • 学科:材料学
    • 办公地点:大连理工大学材料馆224
    • 联系方式:dongxf@dlut.edu.cn
    • 电子邮箱:dongxf@dlut.edu.cn

    访问量:

    开通时间:..

    最后更新时间:..

    Facile preparation of poly(epsilon-caprolactone)/Fe3O4@graphene oxide superparamagnetic nanocomposites

    点击次数:

    论文类型:期刊论文

    发表时间:2013-08-01

    发表刊物:POLYMER BULLETIN

    收录刊物:SCIE、EI、Scopus

    卷号:70

    期号:8

    页面范围:2359-2371

    ISSN号:0170-0839

    关键字:Poly(epsilon-caprolactone); Fe3O4 nanoparticles; Graphene oxide; In situ polymerization; Nanocomposites

    摘要:The main goal in this work was to prepare and characterize a kind of novel superparamagnetic poly(epsilon-caprolactone)/Fe3O4@graphene oxide (PCL/Fe3O4@GO) nanocomposites via facile in situ polymerization. Fabrication procedure included two steps: (1) GO nanosheets were decorated with Fe3O4 nanoparticles by an inverse co-precipitation method, which resulted in the production of the magnetite/GO hybrid nanoparticles (Fe3O4@GO); (2) incorporation of Fe3O4@GO into PCL matrix through in situ polymerization afforded the magnetic nanocomposites (PCL/Fe3O4@GO). The microstructure, morphology, crystallization properties, thermal stability and magnetization properties of nanocomposites were investigated with various techniques in detail. Results of wide-angle X-ray diffraction showed that the incorporation of the Fe3O4@GO nanoparticles did not affect the crystal structure of PCL. Images of field emission scanning electron microscope and transmission electron microscopy showed Fe3O4@GO nanoparticles evenly spread over PCL/Fe3O4@GO nanocomposites. Differential scanning calorimeter and polar optical microscopy showed that the crystallization temperature increased and the spherulites size decreased by the presence of Fe3O4@GO nanoparticles in the nanocomposites due to the heterogeneous nucleation effect. Thermogravimetric analysis indicated that the addition of Fe3O4@GO nanoparticles reduced the thermal stability of PCL in the nanocomposites. The superparamagnetic behavior of the PCL/Fe3O4@GO nanocomposites was testified by the superconducting quantum interference device magnetometer analysis. The obtained superparamagnetic nanocomposites present potential applications in tissue engineering and targeted drug delivery.