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首页> 外文期刊>Macromolecular chemistry and physics >Functional Materials Design through Hydrogel Encapsulation of Inorganic Nanoparticles: Recent Developments and Challenges
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Functional Materials Design through Hydrogel Encapsulation of Inorganic Nanoparticles: Recent Developments and Challenges

机译:通过水凝胶封装无机纳米粒子的功能材料设计:最近的发展和挑战

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摘要

The encapsulation of inorganic nanoparticles by hydrogel shells offers a promising pathway toward the design of functional building blocks for manifold applications. Hydrogel shells can be grown in a broad range of thicknesses, from a few tens to several hundreds of nanometer, allowing for encapsulation of inorganic particles with different composition, size, and shape. This gives access to a diverse toolbox of colloidal building blocks, which combine properties of the individual components in a multifunctional fashion. Hydrogel shells provide the nanoparticle cores with transparent, soft, and responsive coatings which improve the colloidal stability and allow interparticle distance control in colloidal assembly. The variation of the shell dimensions gives access to controlling the fill factor and ultimately distance-dependent effects such as plasmon resonance coupling. This article summarizes the latest efforts in the preparation of core-shell colloids with different inorganic cores and hydrogel shells of various morphologies as well as the assembly of these building blocks into functional superstructures. It is demonstrated how the level of complexity can be increased from 1D to 3D by chemical treatment of core-shell particles, i.e., core growth or core removal, and template-free as well as template-assisted assembly leading to isotropic and anisotropic arrangements of particles.
机译:水凝胶壳的无机纳米颗粒的封装提供了朝向歧管应用的功能构建块设计的有希望的途径。水凝胶壳可以在宽范围的厚度范围内生长,从几十到几百纳米,允许用不同的组成,尺寸和形状封装无机颗粒。这可以访问胶体构建块的多样化工具箱,其将各个组件的特性以多功能的方式组合。水凝胶壳提供纳米粒子芯,其具有透明,柔软和响应性的涂层,可提高胶体稳定性并允许胶体组件中的颗粒间距离控制。壳体尺寸的变化可以访问控制填充因子和最终依赖于等离子体共振耦合的距离依赖性效果。本文总结了用不同无机核和各种形态的水凝胶壳制备核壳胶体的最新努力,以及这些构建块的组装成功能上层建筑。通过核心 - 壳颗粒的化学处理,即核心生长或核心去除,以及无模板辅助组件,如何通过1D到3D增加复杂程度的复杂程度如何从1D到3D增加到3D。粒子。

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