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Self-assembled, robust titanate nanoribbon membranes for highly efficient nanosolid capture and molecule discrimination

机译:钛酸自组装、健壮nanoribbon为高效nanosolid捕获膜和分子歧视

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摘要

Supersaturation-directing self-assembly strategy for growing titanate nanoribbon membrane with capabilities of nanosolid capture and small molecule discrimination is reported. Owing to the distinct morphology of the nanoribbons and the accurate self-assembly process, the resulting membrane possesses outstanding mechanical properties (rupture strength exceeding 10 kg) and surprisingly high porosity (~97%), although there are no strong bonds among the nanoribbons. On the basis of the robustness of the membrane, we fabricated a column-shaped filter apparatus where the membrane acted as self-standing permeation barrier to evaluate its permeability and practical uses as molecule filter and nanosolid filter. The test of the membrane with pure water reveals that the membrane possesses a fast permeability while consumes very low energy due to the significantly high porosity. The test of the membrane with 13 nm Au solution and yellow-emitting CdTe QDs reveals that both the nanosolids are completely removed from the solution, indicating the membrane is an efficient nanosolid filter. The high efficiency is because the membrane is free of deficiencies and the flat and broad surfaces of the nanoribbons are ideal permeation barriers. The test of the membrane with charged molecules reveals that cationic species and anionic species are discriminated and at the same time the cationic species are enriched on the membrane, which indicate that the membrane is an ideal molecule filter too. The present work should provide a significant step forward to bringing macroscopic architectures assembled by 1D nanostructure much closer to real-world applications involving isolation and enrichment of biomolecuies, catalyst reclamation, environmental remediation, and water purification. More broadly, through the on-demand capture of tiny nanosolids with optical, electrical, magnetic, and/ or catalytic functionality, it is able to design and construct novel macroscopic nanocomposites readily; this will extend the applications of the titanate nanoribbon membrane beyond separation to the areas of photoelectrochemical devices, chemical sensors, catalysis, plasmonics, and so on.
机译:Supersaturation-directing自组装策略种植钛酸nanoribbon膜nanosolid捕获和小的功能分子歧视是报道。独特的nanoribbons和形态准确的自组装过程,由此产生膜具有杰出的机械(断裂强度超过10公斤)和属性惊人的高孔隙度(~ 97%),虽然没有强大的债券nanoribbons之一。鲁棒性膜的基础,我们捏造一个湿过滤装置细胞膜作为独立的渗透评估其渗透率和障碍实际使用分子过滤器和nanosolid过滤器。揭示了膜具有快渗透率而消耗的能量由于非常低相当高的孔隙度。与13纳米膜和非盟解决方案量子点yellow-emitting CdTe同时显示nanosolids完全撤出膜是一种有效的解决方案,说明nanosolid过滤器。膜是免费的缺陷和平坦和广泛的表面nanoribbons的理想渗透屏障。表明,阳离子带电分子物种和阴离子物种歧视与此同时,阳离子物种丰富的膜,这表明膜是一种理想的分子过滤器。现在的工作应该提供一个重要的步骤将宏观架构由一维奈米结构更接近涉及隔离和实际应用浓缩biomolecuies,催化剂回收,环境治理、和水净化。与光学捕获微小的nanosolids,电、磁和/或催化功能,它能够设计和构造小说宏观纳米复合材料容易;将钛酸的应用nanoribbon膜分离的光电化学领域设备,化学传感器、催化、等离子等。

著录项

  • 来源
    《Nanoscale》 |2013年第8期|3486-3495|共10页
  • 作者

    Xuebo Cao; Yun Zhou; Jun Wu;

  • 作者单位

    Key Lab of Organic Synthesis qfjiangsu Province and Department of Chemistry, Soochow University, Suzhou, Jiangsu 215123, China;

    School of Biology and Chemical Engineering, Jiaxing University, Jiaxing, Zhejiang 314001, China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 英语
  • 中图分类
  • 关键词

    porosimetry; Nanobelts; moleculesmembraneFilters;

    机译:None;
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