• 更多栏目

    陈硕

    • 教授     博士生导师   硕士生导师
    • 性别:女
    • 毕业院校:大连理工大学
    • 学位:博士
    • 所在单位:环境学院
    • 学科:环境工程. 环境科学
    • 办公地点:大连理工大学环境学院B717
    • 联系方式:0411-84706263
    • 电子邮箱:shuochen@dlut.edu.cn

    访问量:

    开通时间:..

    最后更新时间:..

    Fabrication of graphene wrapped ZnIn2S4 microspheres heterojunction with enhanced interfacial contact and its improved photocatalytic performance

    点击次数:

    论文类型:期刊论文

    发表时间:2014-02-21

    发表刊物:DALTON TRANSACTIONS

    收录刊物:SCIE、EI、PubMed、Scopus

    卷号:43

    期号:7

    页面范围:2888-2894

    ISSN号:1477-9226

    摘要:Due to their build-in electric fields locating at interfaces of different materials, heterojunctions have shown excellent carrier separation ability and received wide attention in photocatalysis and photovoltaics. In general, larger interface area and smoother carrier transfer pathway are favorable for heterojunctions to achieve larger active area of build-in electric fields and longer photogenerated charge lifetime, respectively, and sequentially the heterojunctions may show optimized separation ability. However, there is hardly any report about this topic. In this paper, we design a new heterojunction material where a graphene (Gr) layer is close-fitting as the surface of the ZnIn2S4 microspheres (ZnIn2S4@Gr) in virtue of the electrostatic interaction between the functional groups of GO and the amino groups of ZnIn2S4 microspheres. Benefiting from the effective contact of Gr and ZnIn2S4 at their interface as well as the superior charge transfer ability of Gr, this structure displays good photocatalytic capability. The kinetic constant of phenol degradation on ZnIn2S4@Gr was 3.03 h(-1) , which was 8.4-fold and 1.5-fold higher than those on ZnIn2S4 and ZnIn2S4-Gr composites, respectively. Furthermore, the excellent performance was stable according to the result of the consecutive cycling experiment. These experimental results demonstrated that the large interface area and smooth carrier transfer pathway were significant for heterojunction materials to provide better photogenerated charge separation properties.