硅藻蛋白石基先进材料的构建和应用研究进展

庄官政, 邓亮亮, 杜培鑫, 袁鹏, 刘冬. 硅藻蛋白石基先进材料的构建和应用研究进展[J]. 矿产保护与利用, 2019, 39(6): 121-133. doi: 10.13779/j.cnki.issn1001-0076.2019.06.017
引用本文: 庄官政, 邓亮亮, 杜培鑫, 袁鹏, 刘冬. 硅藻蛋白石基先进材料的构建和应用研究进展[J]. 矿产保护与利用, 2019, 39(6): 121-133. doi: 10.13779/j.cnki.issn1001-0076.2019.06.017
ZHUANG Guanzheng, DENG Liangliang, DU Peixin, YUAN Peng, LIU Dong. Building and Applications of Diatom Silica-Based Advanced Materials[J]. Conservation and Utilization of Mineral Resources, 2019, 39(6): 121-133. doi: 10.13779/j.cnki.issn1001-0076.2019.06.017
Citation: ZHUANG Guanzheng, DENG Liangliang, DU Peixin, YUAN Peng, LIU Dong. Building and Applications of Diatom Silica-Based Advanced Materials[J]. Conservation and Utilization of Mineral Resources, 2019, 39(6): 121-133. doi: 10.13779/j.cnki.issn1001-0076.2019.06.017

硅藻蛋白石基先进材料的构建和应用研究进展

  • 基金项目:
    国家高层次人才领军人才项目、中科院青年创新促进会优秀会员项目(2016-81-01);广东省省级科技计划项目(2017B020237003)
详细信息
    作者简介: 庄官政(1991-), 男, 博士, 主要从事矿物表-界面反应性及矿物材料研究, E-mail:zhuangguanzheng@gig.ac.cn
    通讯作者: 袁鹏(1975-), 男, 博士, 研究员, 从事矿物结构和表-界面作用及其资源与环境效应研究, E-mail:yuanpeng@gig.ac.cn
  • 中图分类号: TD976+.5;TB34

Building and Applications of Diatom Silica-Based Advanced Materials

More Information
  • 本文简析了硅藻蛋白石的结构和性质特点,总结了硅藻蛋白石基先进材料在环境治理、纳米能源(锂离子电池、超级电容器、太阳能电池、储氢和储热材料)和生物医药(药物传输和缓释载体、生物组织工程、凝血剂和生物传感)领域的应用研究进展,探讨了硅藻蛋白石在先进材料中的作用和机制。此外,还简要分析了硅藻蛋白石基先进材料应用研究的不足和发展方向。

  • 加载中
  • 图 1  硅藻壳体多样化的形貌(标尺10 μm)[6]

    Figure 1. 

    图 2  硅藻蛋白石表面的富铝铁质薄膜[7]

    Figure 2. 

    图 3  有机硅烷化改性硅藻蛋白石吸附Hg+示意图[31]

    Figure 3. 

    图 4  基于硅藻蛋白石的多孔硅电极材料[38]

    Figure 4. 

    图 5  包覆碳膜的多孔硅电极的电化学性能[38]

    Figure 5. 

    图 6  以硅藻蛋白石为模板合成多孔MnO2电化学活性材料的示意图[44]

    Figure 6. 

    图 7  镁热还原法制备的基于硅藻蛋白石的纳米多孔硅在光电转换中的应用[51]

    Figure 7. 

    图 8  (a) 氧化石墨烯改性硅藻蛋白石的示意图;(b)的硅藻蛋白石的SEM图[101]

    Figure 8. 

    图 9  (a) 多孔硅载体的载药与释放以及自我报告示意图;(b)DNR释放5 d和30 d后多孔硅载体的光致发光光谱图;(c)DNR释放过程中不同阶段的共聚焦显微镜图像发光强度图[110]

    Figure 9. 

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出版历程
收稿日期:  2019-10-03
刊出日期:  2019-12-25

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