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Three-dimensional printing-based electro-millifluidic devices for fabricating multi-compartment particles

机译:用于制造多隔室颗粒的基于三维印刷的电流体流体装置

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摘要

In this work, we demonstrate the use of stereolithographic 3D printing to fabricate millifluidic devices, which are used to engineer particles with multiple compartments. As the 3D design is directly transferred to the actual prototype, this method accommodates 3D millimeter-scaled features that are difficult to achieve by either lithographic-based microfabrication or traditional macrofabrication techniques. We exploit this approach to produce millifluidic networks to deliver multiple fluidic components. By taking advantage of the laminar flow, the fluidic components can form liquid jets with distinct patterns, and each pattern has clear boundaries between the liquid phases. Afterwards, droplets with controlled size are fabricated by spraying the liquid jet in an electric field, and subsequently converted to particles after a solidification step. As a demonstration, we fabricate calcium alginate particles with structures of (1) slice-by-slice multiple lamellae, (2) concentric core-shells, and (3) petals surrounding the particle centers. Furthermore, distinct hybrid particles combining two or more of the above structures are also obtained. These compartmentalized particles impart spatially dependent functionalities and properties. To show their applicability, various ingredients, including fruit juices, drugs, and magnetic nanoparticles are encapsulated in the different compartments as proof-of-concepts for applications, including food, drug delivery, and bioassays. Our 3D printed electro-millifluidic approach represents a convenient and robust method to extend the range of structures of functional particles.
机译:在这项工作中,我们演示了使用立体光刻3D打印来制造微流控设备的方法,该设备用于设计具有多个隔室的颗粒。由于将3D设计直接转移到实际原型中,因此该方法可容纳3D毫米级的功能,这些功能很难通过基于光刻的微加工或传统的宏观加工技术来实现。我们利用这种方法来产生微流体网络来传递多种流体成分。通过利用层流,流体成分可以形成具有不同图案的液体射流,并且每个图案在液相之间具有清晰的边界。之后,通过在电场中喷射液体射流来制造具有可控尺寸的液滴,然后在固化步骤之后将其转变为颗粒。作为演示,我们制造了海藻酸钙颗粒,其结构为(1)逐片多层薄片,(2)同心核-壳,以及(3)围绕颗粒中心的花瓣。此外,还获得了结合了两种或更多种上述结构的独特的杂化颗粒。这些分隔的颗粒赋予空间相关的功能和特性。为了显示其适用性,将各种成分(包括果汁,药物和磁性纳米颗粒)封装在不同的隔室中,作为用于包括食品,药物输送和生物测定在内的各种应用的概念验证。我们的3D打印电微流体方法代表了一种方便而强大的方法,可以扩展功能性颗粒的结构范围。

著录项

  • 作者

    Liu Z; Shum HC; Chen QL;

  • 作者单位
  • 年度 2014
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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