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3D complex shaped- dissolvable multi level micro/nano mould fabrication

机译:3D复杂形状可溶解的多层微/纳米模具制造

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摘要

There is growing interest in the development of fabrication techniques to cost effectively mass-produce high-resolution (micro/nano) 3D structures in a range of materials. Biomedical applications are particularly significant. This work demonstrates a novel technique to simultaneously fabricate a sacrificial mould having the inverse shape of the desired device structure and also create the desired device structure using electroplating deposition techniques. The mould is constructed of many thin layers using a photoresist material that is dissolvable and sensitive to UV light. At the same time the device is created in the emerging mould layers using Gold electroplating deposition technique. Choosing to fabricate the mould and the 3D structures in multiple thin layers allows the use of UV light and permits the potential cost-effective realization of 3D curved surfaces, the accuracy and geometric details of which are related to the number of layers used. In this work I present a novel idea to improve the LIGA process when using many masks to deposit multi thin layer over each other. Moreover, this technique can be utilized to produce a curved surface in the vertical direction with any diameter. Practically, a 2 µm thickness of layer is applied in the proposed technique. However, a layer of 0.5 µm or less can be deposited. An example is provided to explain the novel fabrication process and to outline the resulting design and fabrication constraints. With this technique, any structure could be made and any material used. The work employs conventional techniques to produce a 3D complex shape. By using conventional techniques with multi layers to produce a 3D structure, many problems are expected to occur during the process. Those problems were mentioned by many researchers in general but have not been addressed correctly. Most researchers have covered those problems by leaving the conventional and using a new technique they invented to produce the required product. However, in my work I have addressed those problems for the first time and I offered a new and effective technique to improve the MEMS technology and make this technology cheaper. This was achieved by using a research methodology requiring a rigorous review of existing processes, as outlined above, then by proposing a concept design for an improved process. This novel proposed process was then tested and validated by a series of experiments involving the manufacture of demo-devices. The conclusion is that this new process has the potential to be developed into a commercially implementable process.
机译:对制造技术的开发越来越感兴趣,以成本有效地在各种材料中批量生产高分辨率(微/纳米)3D结构。生物医学应用特别重要。这项工作证明了一种新颖的技术,可以同时制造具有所需器件结构倒置形状的牺牲模具,并且还可以使用电镀沉积技术创建所需器件结构。模具由许多薄层构成,它们使用可溶解且对紫外线敏感的光刻胶材料。同时,使用金电镀沉积技术在新兴的模具层中创建设备。选择在多个薄层中制造模具和3D结构可以使用UV光,并可以潜在地实现具有成本效益的3D曲面,其精度和几何细节与使用的层数有关。在这项工作中,我提出了一种新颖的想法,可以在使用许多掩膜在彼此之间沉积多层薄膜时改善LIGA工艺。而且,可以利用该技术在垂直方向上产生任何直径的弯曲表面。实际上,在提出的技术中应用了2 µm的层厚度。然而,可以沉积0.5μm或更小的层。提供了一个示例来说明新颖的制造过程并概述所得的设计和制造约束条件。利用这种技术,可以制造任何结构并使用任何材料。该作品采用常规技术来生成3D复杂形状。通过使用具有多层的常规技术来产生3D结构,预计在此过程中会发生许多问题。这些问题通常被许多研究人员提到,但并未得到正确解决。大多数研究人员通过放弃传统方法并使用他们发明的新技术来生产所需产品来解决这些问题。但是,在我的工作中,我第一次解决了这些问题,并提供了一种新的有效技术来改进MEMS技术并使其更便宜。如上所述,这是通过使用需要对现有过程进行严格审查的研究方法,然后通过提出用于改进过程的概念设计来实现的。然后,通过涉及演示设备制造的一系列实验来测试和验证这一提出的新工艺。结论是,这一新过程有可能被开发为可商业实施的过程。

著录项

  • 作者

    Kriama Abdulbast;

  • 作者单位
  • 年度 2011
  • 总页数
  • 原文格式 PDF
  • 正文语种 English
  • 中图分类

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