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具有多种形貌的聚合物软物质的流体流动模板化。

Fluid Flow Templating of Polymeric Soft Matter with Diverse Morphologies.

机构信息

Department of Chemical and Biomolecular Engineering, North Carolina State University, Raleigh, NC, 27695, USA.

Food, Chemical, and Biotechnology cluster, Singapore Institute of Technology, 10 Dover Drive, Singapore, Singapore, 138683, Singapore.

出版信息

Adv Mater. 2023 Apr;35(16):e2211438. doi: 10.1002/adma.202211438. Epub 2023 Mar 9.

Abstract

It is challenging to find a conventional nanofabrication technique that can consistently produce soft polymeric matter of high surface area and nanoscale morphology in a way that is scalable, versatile, and easily tunable. Here, the capabilities of a universal method for fabricating diverse nano- and micro-scale morphologies based on polymer precipitation templated by the fluid streamlines in multiphasic flow are explored. It is shown that while the procedure is operationally simple, various combinations of its intertwined mechanisms can controllably and reproducibly lead to the formation of an extraordinary wide range of colloidal morphologies. By systematically investigating the process conditions, 12 distinct classes of polymer micro- and nano-structures including particles, rods, ribbons, nanosheets, and soft dendritic colloids (dendricolloids) are identified. The outcomes are interpreted by delineating the physical processes into three stages: hydrodynamic shear, capillary and mechanical breakup, and polymer precipitation rate. The insights into the underlying fundamental mechanisms provide guidance toward developing a versatile and scalable nanofabrication platform. It is verified that the liquid shear-based technique is versatile and works well with many chemically diverse polymers and biopolymers, showing potential as a universal tool for simple and scalable nanofabrication of many morphologically distinct soft matter classes.

摘要

找到一种常规的纳米制造技术来以可扩展、多功能且易于调节的方式一致地生产具有高表面积和纳米级形态的软聚合物质极具挑战性。在这里,探索了一种基于多相流中流体流线对聚合物沉淀模板的通用方法来制造各种纳米和微尺度形态的能力。结果表明,虽然该程序操作简单,但其交织机制的各种组合可以可控且可重复地导致形成非常广泛的胶体形态。通过系统地研究工艺条件,确定了 12 种不同类别的聚合物微纳结构,包括颗粒、棒、带、纳米片和软树枝状胶体(dendricolloids)。通过将物理过程划分为三个阶段:流体剪切、毛细和机械断裂以及聚合物沉淀速率,对结果进行了解释。对基础机制的深入了解为开发通用的纳米制造平台提供了指导。验证了基于液体剪切的技术具有多功能性,并且可以与许多化学性质不同的聚合物和生物聚合物很好地配合使用,显示出作为通用工具用于简单和可扩展的多种形态软物质类别的纳米制造的潜力。

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