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Hourglass-Shaped Microfibers

机译:沙漏形微纤维

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Heterotypic microfibers have been recognized as promising building blocks for the multifunctionality demanded in various fields, such as environmental and biomedical engineering. We present a novel microfluidics-based technique to generate bio-inspired microfibers with hourglass-shaped knots (named hourglass-shaped microfibers) via the integration of a non-solvent-induced phase separation (NIPS) process. The microfibers with spindle knots (named spindle-microfibers) are generated as templates at a large scale. The morphologies of spindle-microfibers can be precisely regulated by controlling the flow rates of the constituent fluids. After post-treatment of the partially gelled spindle-microfibers in ethanol, the encapsulated oil cores leak from knots, and the fibers morph into an hourglass shape. By controlling the oil core spillage and the templates configurations, a variety of hourglass-shaped microfibers can be obtained with adjustable morphologies and densities ranging from those of cavity-microfibers to those of spindle-microfibers. The hourglass-shaped microfibers preponderate spindle-microfibers in terms of changeable weight, adjustable morphologies, high specific surface areas, and enhanced surface roughness. Their unique macroscale topographies and properties lead to enhanced dehumidification and water collection abilities. This NIPS-integrated microfluidic technique offers a promising and novel way to manufacture microfibers by design, tailoring their structures and properties to suit a desired application.
机译:异型微纤维已被认为是在各个领域所需的多功能性的承诺构建块,例如环境和生物医学工程。我们介绍了一种新型的基于微流体的技术,通过整合非溶剂诱导的相分离(NIPS)工艺来产生具有沙漏形结(命名为沙漏形微纤维)的生物启发微纤维。具有主轴结(命名主轴微纤维)的微纤维以大规模的模板产生。通过控制组成流体的流速来精确调节主轴微纤维的形态。在乙醇中部分凝胶化纺锤体微纤维后处理后,包封的油芯从结泄漏,并且纤维变成沙漏形状。通过控制油芯溢出和模板构造,可以通过可调节的形态和密度来获得各种沙漏形微纤维,所述密度范围为腔微纤维的腔微纤维。滴漏形微纤维在可变的重量,可调节形态,高比表面积和增强的表面粗糙度方面优化主轴微纤维。他们独特的宏观形貌和物业导致增强的除湿和水收集能力。该钻孔集成的微流体技术提供了通过设计制造微纤维的有前途和新的方法,使其结构和性能定制以适应所需的应用。

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