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Colloidal Assembly of Hierarchically Structured Porous Supraparticles from Flower-Shaped Protein-Inorganic Hybrid Nanoparticles

机译:花状蛋白-无机杂化纳米粒子的分层结构多孔超粒子的胶体组装。

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摘要

Mimicry of biomineralization is an attractive strategy to fabricate nanostructured hybrid materials. While biomineralization involves processes that organize hybrid clusters into complex structures with hierarchy, arrangement of artificial components in biomimetic approaches has been challenging. Here, we demonstrate self-assembly of hierarchically structured porous supraparticles from protein inorganic hybrid flower-shaped (FS) nanoparticle building blocks. In our strategy, the FS nanoparticles self-assemble via high valency interactions in combination with interfacial adsorption and compression. The flower-like shape directed robust assembly of the FS nanoparticles into chain-like clusters in solution, which were further assembled into spherical supraparticles during rotation of FS nanoparticle solution. Continuously expanding and contracting the air water interface during rotation catalyzed assembly of FS nanoparticle dusters, indicating that adsorption and compression of the building blocks at the interface were critical. The resulting supraparticles contain hierarchical pores which are translated from the structural characteristics of individual FS nanoparticle building blocks. The protein inorganic supraparticles are protein compatible, have large surface area, and provide specific affinity recognition for robust protein immobilization. A variety of functional proteins could be immobilized to the porous supraparticles, making it a general platform that could provide benefits for many applications.
机译:生物矿化的模仿是制造纳米结构杂化材料的一种有吸引力的策略。虽然生物矿化涉及将杂种簇组织成具有层次结构的复杂结构的过程,但是仿生方法中人工成分的布置一直是一个挑战。在这里,我们展示了蛋白质无机杂化花形(FS)纳米粒子构建基块的分层结构的多孔超粒子的自组装。在我们的策略中,FS纳米颗粒通过高价相互作用与界面吸附和压缩结合而自我组装。花状形状指导了FS纳米颗粒在溶液中牢固组装成链状簇,并在FS纳米颗粒溶液旋转过程中进一步组装成球形超颗粒。 FS纳米粉尘的旋转催化组装过程中,空气与水的界面不断膨胀和收缩,这表明构件在界面处的吸附和压缩至关重要。所得超颗粒包含分层的孔,这些孔是从单个FS纳米颗粒构件的结构特征转化而来的。蛋白质无机超颗粒与蛋白质相容,具有较大的表面积,并为牢固的蛋白质固定提供特异性的亲和力识别。多种功能蛋白可以固定在多孔超颗粒上,使其成为可为许多应用带来益处的通用平台。

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