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首页> 外文期刊>Optics Letters >Fine-tuned grayscale optofluidic maskless lithography for three-dimensional freeform shape microstructure fabrication
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Fine-tuned grayscale optofluidic maskless lithography for three-dimensional freeform shape microstructure fabrication

机译:微调灰度光流体无掩模光刻技术,用于三维自由形状微结构的制造

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摘要

This article presents free-floating three-dimensional (3D) microstructure fabrication in a microfluidic channel using direct fine-tuned grayscale image lithography. The image is designed as a freeform shape and is composed of gray shades as light-absorbing features. Gray shade levels are modulated through multiple reflections of light in a digital micromirror device (DMD) to produce different height formations. Whereas conventional photolithography has several limitations in producing grayscale colors on photomask features, our method focuses on a maskless, single-shot process for fabrication of freeform 3D micro-scale shapes. The fine-tuned gray image is designed using an 8-bit grayscale color; thus, each pixel is capable of displaying 256 gray shades. The pattern of the UV light reflecting on the DMD is transferred to a photocurable resin flowing through a microfluidic channel. Here, we demonstrate diverse free-floating 3D microstructure fabrication using fine-tuned grayscale image lithography. Additionally, we produce polymeric microstructures with locally embedded gray encoding patterns, such as grayscale-encoded microtags. This functional microstructure can be applied to a biophysical detection system combined with 3D microstructures. This method would be suitable for fabricating 3D microstructures that have a specific morphology to be used for particular biological or medical applications.
机译:本文介绍了使用直接微调灰度图像光刻技术在微流体通道中自由浮动的三维(3D)微结构制造。图像被设计为自由形状,并由灰色阴影作为光吸收特征。通过在数字微镜设备(DMD)中多次反射光来调制灰度等级,以产生不同的高度形式。传统的光刻技术在光掩模特征上产生灰度颜色方面存在一些局限性,而我们的方法着重于无掩模,单次生产自由形状3D微尺度形状的过程。精调的灰度图像是使用8位灰度颜色设计的;因此,每个像素能够显示256个灰色阴影。在DMD上反射的UV光的图案被转移到流过微流体通道的可光固化树脂上。在这里,我们演示了使用微调的灰度图像光刻技术进行的多种自由浮动3D微结构制造。此外,我们生产的聚合物微结构具有局部嵌入的灰度编码模式,例如灰度编码的微标签。该功能性微结构可以应用于结合了3D微结构的生物物理检测系统。该方法将适合于制造具有特定形态的3D微结构,以用于特定的生物学或医学应用。

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