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Magnetic assembly route to colloidal responsive photonic nanostructures.

机译:磁性组装路线到胶体响应光子纳米结构。

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摘要

Responsive photonic bandgap materials, more commonly known as responsive photonic crystals, which can remotely change their structural colors in response to the external stimuli, have important applications in areas such as color displays, biological and chemical sensors, inks and paints, or many optically active components. Despite the development of different types of colloidal responsive photonic systems, wide use of these systems in practical applications is hampered by low fabrication efficiency, limited tunability of the band gap, a slow response to the external stimuli, and difficulty of integration into existing photonic systems. Through the magnetic assembly route, we attempted to develop new types of responsive photonic nanostructures with improved fabrication efficiency, rapid response, and wide tunability of the band gap. We have demonstrated the rapid assembly of superparamagnetic colloidal particles into various photonic nanostructures. We have also demonstrated that an external magnetic field can be used as an effective stimulus to manipulate the photonic properties of the self-assembled nanostructures by affecting the lattice constant, the orientation, or the crystal structures. As there are many more choices for nonmagnetic colloidal particles with uniform size and optimal refractive index, it would be advantageous to extend this magnetic assembly strategy to nonmagnetic particles. We have demonstrated the use of nanocrystal-based ferrofluids to direct the assembly of nonmagnetic colloidal particles into photonic crystal structures. The process is general, efficient, convenient, and scalable and thus represents a new and practical platform for the fabrication of colloidal crystal-based photonic devices. We have also developed a universal strategy that allows convenient magnetically-driven assembly of general objects in defined locations with high spatial resolution. The process involves immersing a polymer relief pattern in a uniformly magnetized ferrofluid, which modulates the local magnetic fields around the pattern. Nonmagnetic target objects dispersed in the same ferrofluid can then be magnetically assembled at positions defined by the polymer pattern. As the nonmagnetic polymer patterns can be conveniently fabricated at low cost, our method provides a general yet very effective means to assemble a wide range of nanoscale objects, paving the way towards patterning functional microstructures.
机译:响应式光子带隙材料(通常称为响应式光子晶体)可以响应外部刺激而远程更改其结构颜色,在彩色显示器,生物和化学传感器,油墨和油漆或许多光学活性材料等领域具有重要的应用组件。尽管开发了不同类型的胶体响应光子系统,但由于制造效率低,带隙可调性有限,对外部刺激的响应较慢以及难以集成到现有光子系统中,这些系统在实际应用中的广泛使用受到了阻碍。 。通过磁性组装路线,我们尝试开发新型的响应式光子纳米结构,该结构具有提高的制造效率,快速响应和带隙可调性。我们已经证明了超顺磁性胶体颗粒快速组装成各种光子纳米结构。我们还证明了外部磁场可以通过影响晶格常数,取向或晶体结构,用作控制自组装纳米结构的光子特性的有效刺激。由于具有均匀尺寸和最佳折射率的非磁性胶体粒子有更多选择,因此将这种磁性组装策略扩展到非磁性粒子将是有利的。我们已经证明了使用基于纳米晶体的铁磁流体将非磁性胶体颗粒组装成光子晶体结构。该过程是通用的,有效的,方便的和可扩展的,因此代表了用于制造基于胶体晶体的光子器件的新的实用平台。我们还开发了一种通用策略,该策略可以方便地以电磁方式在定义的位置以高空间分辨率组装一般对象。该过程包括将聚合物凸版图案浸入均匀磁化的铁磁流体中,从而调制该图案周围的局部磁场。然后可以将分散在同一铁磁流体中的非磁性目标物体磁性组装在聚合物图案所定义的位置。由于非磁性聚合物图案可以以低成本方便地制造,因此我们的方法提供了一种通用而非常有效的方法来组装各种纳米级物体,从而为图案化功能微结构铺平了道路。

著录项

  • 作者

    He, Le.;

  • 作者单位

    University of California, Riverside.;

  • 授予单位 University of California, Riverside.;
  • 学科 Chemistry General.;Nanoscience.;Engineering Materials Science.;Chemistry Physical.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 212 p.
  • 总页数 212
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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