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Guided hierarchical co-assembly of soft patchy nanoparticles

机译:引导性的软斑块状纳米粒子的分层共组装

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摘要

The concept of hierarchical bottom-up structuring commonly encountered in natural materials provides inspiration for the design of complex artificial materials with advanced functionalities. Natural processes have achieved the orchestration of multicompo-nent systems across many length scales with very high precision, but man-made self-assemblies still face obstacles in realizing well-defined hierarchical structures. In particle-based self-assembly, the challenge is to program symmetries and periodicities of superstructures by providing monodisperse building blocks with suitable shape anisotropy or anisotropic interaction patterns ('patches'). Irregularities in particle architecture are intolerable because they generate defects that amplify throughout the hierarchical levels. For patchy microscopic hard colloids, this challenge has been approached by using top-down methods (such as metal shading or microcontact printing), enabling molecule-like directionality during aggregation12 16. However, both top-down procedures and particulate systems based on molecular assembly struggle to fabricate patchy particles con-trollably in the desired size regime (10-100 nm). Here we introduce the co-assembly of dynamic patchy nanoparticles-that is, soft patchy nanoparticles that are intrinsically self-assembled and monodisperse-as a modular approach for producing well-ordered binary and ternary supracolloidal hierarchical assemblies. We bridge up to three hierarchical levels by guiding triblock terpolymers (length scale 〜10 nm) to form soft patchy nanoparticles (20-50 nm) of different symmetries that, in combination, co-assemble into substructured, compartmentalized materials (>10 μm) with predictable and tunable nanoscale periodicities. We establish how molecular control over polymer composition programs the building block symmetries and regulates particle positioning, offering a route to well-ordered mixed mesostructures of high complexity.
机译:天然材料中常见的自下而上的分层结构概念为具有先进功能的复杂人造材料的设计提供了灵感。自然过程已经以很高的精度实现了跨越许多长度尺度的多组件系统的编排,但是人造自组装在实现明确定义的层次结构方面仍然面临障碍。在基于粒子的自组装中,挑战在于通过提供具有适当形状各向异性或各向异性相互作用模式(“斑纹”)的单分散构件来编程上层结构的对称性和周期性。粒子体系结构中的不规则性是无法忍受的,因为它们会产生缺陷,这些缺陷会在整个层次结构层次上放大。对于斑块状的微观硬胶体,已经通过使用自上而下的方法(例如金属阴影或微接触印刷)来应对这一挑战,从而在聚集过程中实现了类似分子的方向性12 16.然而,自上而下的程序和基于分子组装的颗粒系统努力以所需的尺寸范围(10-100 nm)可控制地制造斑片状颗粒。在这里,我们介绍动态斑驳的纳米粒子的共组装,即固有地自我组装和单分散的软斑驳的纳米粒子,作为一种模块化的方法,用于产生井井有条的二元和三元超胶体分层组装体。我们通过引导三嵌段三元共聚物(长度范围〜10 nm)形成不同对称性的柔软的片状纳米颗粒(20-50 nm),将它们桥接在一起,共同组合成亚结构的,分隔的材料(> 10μm),从而将层次划分为三个层次具有可预测和可调的纳米级周期性。我们建立了对聚合物成分进行分子控制的程序,以编程方式构造构件的对称性并调节粒子的位置,从而提供了通往具有高度复杂性的井井有条的混合介观结构的途径。

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  • 来源
    《Nature》 |2013年第7475期|247-251|共5页
  • 作者单位

    Makromolekulare Chemie Ⅱ;

    Universitaet Bayreuth, D-95440 Bayreuth, Germany,Present addresses: Department of Applied Physics, Aalto University, FI-02150 Espoo, Finland (A.H.G.) Institute of Organic Chemistry, Johannes Gutenberg-Universitaet, D-55099 Mainz, Germany (A.H.E.M.);

    DWI at RWTH Aachen University, Institute for Interactive Materials Research, 52056 Aachen, Germany;

    Makromolekulare Chemie Ⅱ;

    Universitaet Bayreuth, D-95440 Bayreuth, Germany;

    Institut fuer Organische Chemie und Makromolekulare Chemie and Jena Center for Soft Matter, Fried rich Schiller Universitaet Jena, D-07743 Jena, Germany;

    Makromolekulare Chemie Ⅱ;

    Universitaet Bayreuth, D-95440 Bayreuth, Germany;

    Makromolekulare Chemie Ⅱ;

    Universitaet Bayreuth, D-95440 Bayreuth, Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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